The charter file carried a tool-specific name while being the repository's own document: mission, non-negotiable constraints, the pinned stack, repo conventions and phase status, cited as authority by thirty files across the agent, api, deploy, docs, search and terraform trees. PROJECT-SPEC.md says what it is. All 42 references are updated in the same commit, including the relative link in docs/status.md, so nothing points at a filename that no longer exists.
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Cairn OBS Threat Model (Phase 4)
Written for a prospective enterprise customer's security team, describing
the system as actually built through Phase 4 task 7 — not the target
architecture. Where a control is designed but not yet implemented, this
document says so explicitly, with a pointer to the tracking doc/task.
See /docs/phase-4-isolation-design.md and /docs/phase-4-rbac-design.md
for the full design rationale behind the controls described here.
Read this first: the single most important open finding
Updated a seventh time — and this time the headline actually changes.
This section originally read "log data queried through POST /query is
not tenant-isolated at all," then "ClickHouse is isolated but Tantivy
isn't," then "ingest tags records with a tenant identity but nothing
routes the write," then "ClickHouse write-routing is built but Tantivy's
isn't," then "both are write-routed but neither rechecks tenant-active
status live," then "both recheck, but ClickHouse's snapshot never
refreshes while Tantivy's does," then (sixth) "both engines are built
and code-complete, but the ClickHouse half has never actually run
against a real ClickHouse." That last gap is now closed: Docker access
became available, and every ClickHouse-dependent piece named below —
tenantprovision, chrunner, chwriter, the system.* metadata
isolation check, and enterprise-api itself actually starting and
serving traffic — has been run against a real
clickhouse/clickhouse-server:24.8 and a real Postgres, not just
type-checked or run against fakes. Closing this loop caught and fixed
six real bugs that no amount of Docker-free testing could have found:
a Docker build-context bug that made enterprise-auth fail to build at
all, a validation gap in dashboards.Store.AddPanel/UpdatePanel, a
raw Postgres error leaking past rbacstore's ErrNotFound boundary,
enterprise-api panicking on startup from a duplicate GET /healthz
route registration, ClickHouse's default user genuinely lacking
CREATE USER privilege until CLICKHOUSE_DEFAULT_ACCESS_MANAGEMENT=1
was added to docker-compose.yml, and — most load-bearing — a freshly
provisioned tenant user was not actually default-denied from
system.* on this ClickHouse version, exactly the risk task 2's
original design flagged as needing live verification rather than trust.
See /docs/phase-4-runbook.md §§1–14 for the full list of what was run
and what each finding was.
Both storage engines are isolated on both the read and write paths,
both gate writes on an active-tenant check, and both refresh that
check periodically — chwriter.Registry.StartRefreshing re-lists
active tenants every minute, the same interval
tenants.ActiveTenantTracker uses on the Tantivy side, opening
connections for newly-active tenants and closing/removing ones no
longer active — a deprovisioned tenant loses ClickHouse write access
within a minute, not "until the next enterprise-ingest restart."
Neither engine does a live per-write check (a database/HTTP round trip
per record would be a real throughput cost neither implementation
accepts), so a minute-wide staleness window remains on both sides by
design, not by oversight. What's left: two tenants (acme, globex)
have been provisioned and exercised end-to-end in this environment.
Human login itself is now verified for real, via both protocols — a
real Auth0 identity logged in via OIDC and (separately) via Auth0's
SAML2 Web App addon, selected between both tenants each way, and
POST /internal/authorize confirmed each selection issued the right
tenant/role (see §3a/§3b/§12 below) — but that walkthrough ran against
plain api serving web's traffic, not enterprise-api, so the
specific combination of "real human SSO session" and "real per-tenant
ClickHouse routing via chrunner" in the same request hasn't been
driven end to end yet; each half is independently confirmed (real
ClickHouse connections and Go integration tests for the routing half,
real Auth0 sessions for the human-login half), just not together in one
request. And whether a given deployment actually runs the isolated
binaries remains a deployment-time decision, not a code-level
guarantee — see below.
ClickHouse (the SQL path) is built and now genuinely verified live.
enterprise/internal/tenantprovision (real CREATE DATABASE/CREATE USER/GRANT/REVOKE) and enterprise/internal/chrunner (a per-tenant
connection registry implementing api/querylang/executor.SQLRunner,
resolving the tenant from request identity, never a parameter) are wired
into enterprise/cmd/enterprise-api, which has itself been built,
started, and confirmed serving traffic on a real docker-compose stack.
Every ClickHouse-dependent test in both packages passes against a real
clickhouse/clickhouse-server:24.8, including the cross-tenant raw-SQL
probe and the corrected system.* metadata-isolation check (see "Known
residual risks" below for the real, version-specific wrinkle that check
found).
Tantivy (the free-text path) is also built, and — unlike the
ClickHouse pieces — genuinely verified in this environment.
search/src/registry.rs's IndexRegistry resolves a SearchRequest. tenant_id to its own on-disk Tantivy index, opened on demand;
enterprise/internal/searchclient sets that field from the
authenticated request identity, mirroring chrunner's exact "read from
ctx, fail closed, never a parameter" shape. Because Tantivy is an
embedded library (no external service to fake or skip), both sides could
actually be run: search/src/registry.rs's
tenant_index_is_isolated_from_default_and_other_tenants seeds three
real indices with the same search term and confirms a tenant-scoped
search returns only that tenant's document; enterprise/internal/ searchclient's tests run a real in-process gRPC server and confirm the
wire-level SearchRequest carries the right tenant_id. All pass, for
real, no disclaimer needed for this specific claim.
Both Helm and docker-compose now close this.
deploy/helm/cairnobs/templates/api.yaml and enterprise-api.yaml are
mutually exclusive, gated on opposite sides of the same
enterprise.enabled flag, rendering to the same Service name/port — so
a Helm-deployed cluster runs exactly one of the two binaries, chosen by
the same flag that turns on RBAC/audit/SSO, not a second
independently-forgettable decision. Verified by parsing (not
eyeballing) the rendered YAML under both values: exactly one cairnobs-api
Deployment either way, with the right image. docker-compose.yml's
api/enterprise-api services are now the analogous mutually-exclusive
choice, gated behind COMPOSE_PROFILES (.env checks in
single-tenant, i.e. plain api, as the zero-config default) and
sharing the same host port/network-alias trick to stay transparent to
alerting/web either way — verified via docker compose config
(renders and validates the merged YAML without a daemon; confirms
api/enterprise-api never both appear in --services output for the
same profile selection) and via an actual docker compose up of
enterprise-api in this environment, which is what caught the duplicate
GET /healthz route panic mentioned above — see
/docs/phase-4-runbook.md §10a. This still only constrains
deployment, not operation: nothing stops an
operator from manually running plain api's image against a cluster
(or compose project) that has tenants
provisioned, pointing at the same ClickHouse/Postgres. The Helm chart
makes the default, chart-managed path correct; it isn't a runtime
guard against misconfiguration.
Ingest now has a real tenant identity, and both storage engines'
write-routing is built. chrunner/searchclient prove read
isolation given tenant-scoped data exists; an optional
ingest/internal/grpcserver.TenantResolver closes the "does a record
know which tenant it belongs to" half by validating a per-tenant bearer
credential an agent presents
(enterprise-auth -create-ingest-credential-tenant=<id> mints one; only
its SHA-256 hash is ever stored) against a POST /internal/authorize-ingest endpoint, and attaching the resolved tenant
ID to every record as a tenant_id Kafka message header before
producing it — fail-closed: once a resolver is configured, a missing or
invalid credential refuses the whole batch, never falls back to "no
tenant."
ClickHouse: enterprise/cmd/enterprise-ingest (a second binary,
mirroring enterprise-api) consumes that header: it reuses
ingest/consumer's own flush loop with enterprise/internal/ chwriter.Registry — a per-tenant *clickhousewriter.Writer registry,
built the same way chrunner's per-tenant connections are — swapped in
as the writer, so a tagged batch's records are grouped by tenant and
each group INSERTed through that tenant's own ClickHouse connection,
fail-closed on an untagged or unprovisioned tenant. Building it surfaced
a real gap in an already-shipped control: tenantprovision. ProvisionClickHouse's grant was SELECT-only (correct for the
read-side credential chrunner uses, but chwriter reuses the same
credential for writes) — every real per-tenant write would have failed
with a permission error until this was widened to SELECT, INSERT.
Registry.StartRefreshing (new) re-lists active tenants every minute
and reconciles the writer map — opens a connection for a newly-active
tenant, closes and removes one no longer active — closing what was
originally a startup-only snapshot with no refresh at all. Not yet
confirmed against a real ClickHouse, same caveat as the read-side
chrunner claim above — the Docker-free fail-closed and refresh-error
tests pass, the live-database tests (including the two new ones proving
refresh's add/remove reconciliation against real connections) are
written but skip-gated, see /docs/phase-4-runbook.md.
Tantivy: search/src/consumer.rs now resolves each record's
tenant_id header through the same IndexRegistry the read side
already used (search/src/registry.rs), and writes there instead of
always into the default index — genuinely verified in this environment,
same as the read-side Tantivy claim above, since Tantivy is an embedded
library with no Docker dependency. No "second binary" was needed here,
unlike ClickHouse: Tantivy has no grant system to gate a
separately-credentialed binary behind, so IndexRegistry already lived
directly in this AGPL-core search binary, and read/write simply share
it. (This reasoning predates Phase 6's relicensing of enterprise/ to
AGPLv3 and originally referred to a commercially-licensed credential --
restated here because the architectural point holds independent of
licensing: Tantivy still has no grant system, so the split was never
about which license enterprise/ carried.)
This write path is now also active-tenant-gated:
search/src/tenants.rs's ActiveTenantTracker polls a new
GET /internal/active-tenants endpoint on enterprise-auth every 60
seconds (RoleService-credentialed, the same auth shape alerting uses
against api) and consumer.rs refuses any tagged record whose tenant
isn't in the polled allowlist — fail-closed on the first fetch (startup
blocks until it succeeds), last-known-good on any later refresh failure.
Off unless ENTERPRISE_AUTH_URL/ENTERPRISE_AUTH_SERVICE_TOKEN are
both set. Genuinely verified here too: real HTTP round trips (the Bearer
header actually sent, JSON parsing, both fail-closed paths) against a
hand-rolled TCP test server, no live enterprise-auth needed since
reqwest doesn't care that the other end is real.
Both engines share one open question now — deployment topology,
covered above — and no longer differ in active-tenant staleness bound:
chwriter.Registry.StartRefreshing re-lists active tenants every
minute, matching ActiveTenantTracker's interval, opening a connection
for a newly-active tenant and closing/removing one no longer active.
Neither is a live per-write check (that would mean a database/HTTP
round trip on every record, a real throughput cost neither
implementation accepts), so a roughly one-minute staleness window
remains on both sides by design, not a gap unique to either engine
anymore. A newly-provisioned tenant's ClickHouse database and Tantivy
index are both now real, isolated, and actually populated by
write-routed agent traffic (the ClickHouse claim pending live
confirmation, the Tantivy claim already verified).
System overview
Browser ──▶ web (SvelteKit, static)
│
▼
Browser ──▶ api OR enterprise-api ──▶ ClickHouse (log data, SQL path)
│ └─▶ search (gRPC) ──▶ Tantivy (log data, full-text path)
└─▶ Postgres (control plane: dashboards, alert_rules,
tenants, users, tenant_memberships, audit_log)
# api: one shared ClickHouse connection, one shared (default) Tantivy
# index via api/searchclient, nil AuditLogger -- Phase 0-3 behavior.
# enterprise-api: enterprise/internal/chrunner (per-tenant ClickHouse
# connections) + enterprise/internal/searchclient (per-tenant Tantivy
# index, via search's SearchRequest.tenant_id) + enterprise/internal/
# audit.QueryAPILogger (real audit writes) wired into the SAME
# api/queryapi.Handler/api/dashboards.Handler core -- see this
# document's "Read this first" section. Either binary can be running;
# nothing forces the isolated one.
alerting ──▶ api or enterprise-api (POST /query, RoleService credential)
alerting ──▶ Postgres (rulestore, notifystore)
api/alerting ──▶ enterprise-auth (POST /internal/authorize, HTTP only —
no Go import edge, see "Module
boundary" below)
Browser ──▶ enterprise-auth (GET /auth/oidc/login, /auth/oidc/callback)
└─▶ external IdP (OIDC authorization code flow)
└─▶ Postgres (rbacstore: users, tenant_memberships)
cairnobsctl ──▶ api, alerting (Bearer token when CAIRNOBSCTL_TOKEN is set)
Ingest path (agent → Redpanda → ingest → ClickHouse, and Redpanda →
search → Tantivy): ingest resolves and tags each record with a real
tenant ID (see "Read this first" above). enterprise/cmd/enterprise-ingest
consumes that tag and routes ClickHouse writes to each tenant's own
database. search/src/consumer.rs (Tantivy's independent Redpanda
consumer) consumes the same tag and routes each record into its own
tenant's index. Both write paths' one remaining gap — no live
active-tenant recheck (ClickHouse: a startup-time snapshot; Tantivy: no
allowlist at all) — is named in "Read this first" above, not separately
designed in /docs/phase-4-isolation-design.md; named here as a gap that
design doc doesn't yet cover, not just an implementation gap.
Module boundary (trust boundary #1)
enterprise/ (SSO, RBAC storage, audit logging, session issuance — AGPLv3,
same as core as of Phase 6, see /docs/compliance/license-audit-report.md)
is never imported by core (/api, /alerting, /web, /cli) —
enforced in CI by hack/check-tenant-boundary.sh, which greps for the
import edge on every build. This is an architectural trust boundary, not
a licensing one: it keeps core buildable and deployable with zero
multi-tenant mechanism present regardless of what license either side
carries, and keeps tenant identity resolution server-side rather than
trusting a request parameter. Core calls
enterprise-auth over plain HTTP (api/authz.HTTPAuthorizer),
forwarding only the Cookie/Authorization headers, never the full
request (api/authz/httpauthz_test.go asserts this — an
unrelated header like X-Forwarded-For is never forwarded). This means
core's authorization decision is only as trustworthy as the network path
to enterprise-auth — see "Deployment/network assumptions" below.
Authentication
Implemented for both OIDC and SAML, to the same verification bar.
enterprise/internal/loginhandler serves GET /auth/oidc/login
(redirects to the configured IdP, with a short-lived HttpOnly cookie
carrying CSRF-protection state) and GET /auth/oidc/callback
(validates state, exchanges the code, verifies the ID token via
enterprise/internal/oidc's real coreos/go-oidc wiring, upserts a
users row keyed by SSO subject, resolves tenant/role from
tenant_memberships, and issues a session.Manager-signed session
cookie), plus the SAML equivalent, GET /auth/saml/login (redirects to
the configured IdP via enterprise/internal/saml's
ServiceProvider.LoginURL, persisting the AuthnRequest ID in a
short-lived cookie — SAML's replay/unsolicited-response defense,
standing in for OIDC's state) and POST /auth/saml/acs (validates the
assertion's signature and InResponseTo against that cookie via
ServiceProvider.ParseResponse, then converges on the same
upsert/resolve/issue-session path OIDC uses). Both are verified
end-to-end with real cryptography, not mocked: OIDC's tests spin up a
real fake IdP (coreos/go-oidc's own oidctest package) that signs
genuine RS256 ID tokens; SAML's tests spin up a real fake IdP
(crewjam/saml/samlidp) that builds and signs genuine SAML assertions
and XML-signs the response, exercising the same ServiceProvider. ParseResponse signature-verification path production uses. Every test
in loginhandler_test.go and saml_test.go passes, including the full
login→callback/ACS→session-cookie round trip for both protocols, and
negative-path tests for each (state/InResponseTo mismatch, missing/
expired credential, missing required claim, no/multiple tenant
memberships). Writing the SAML test caught two real bugs in
enterprise/internal/saml's ParseResponse, both fixed before this
verification was considered complete: it never called r.ParseForm()
before reading the POSTed SAMLResponse field (every real ACS POST
would have decoded an empty response), and its email-attribute matching
missed urn:oid:0.9.2342.19200300.100.1.3 (the standard LDAP "mail"
OID) — what an IdP sends by default when the SP hasn't explicitly
requested an attribute literally named "email", which is exactly what
samlidp's own default assertion builder does. Not yet verified for
either protocol: wiring this into a running enterprise-auth
container against a real external IdP (Google/Okta/etc.) — that needs
real IdP credentials and a reachable callback/ACS URL neither of which
this environment has; see /docs/phase-4-runbook.md.
A user with zero tenant_memberships rows is refused outright (403).
More than one no longer guesses or refuses: finishLogin issues a
short-lived session.Manager "pending login" token (a distinct Go/JWT
type from a real session, with its own disjoint claim name so a real
session token can't double as one — a real bug this design's own test
suite caught before it shipped, see session.PendingLoginClaims's doc
comment) and redirects to web/src/routes/select-tenant, backed by two
endpoints (GET /auth/memberships, POST /auth/select-tenant) that
list the identity's real tenant options and, on selection, re-derive the
role for the chosen tenant server-side (never trusting a client-supplied
role) before issuing the real session. Both the backend protocol and
the frontend page that calls it are now built. The backend is verified
with the same real-fake-IdP tests as the rest of internal/loginhandler.
The frontend needed a second CORS posture — httpserver. WithCredentialedCORS, a literal origin plus
Access-Control-Allow-Credentials: true, since a credentialed fetch
and a wildcard Access-Control-Allow-Origin can never be combined, so
this couldn't reuse enterprise-api's wildcard-friendly WithCORS — and
is genuinely verified in a real browser in this environment (not just
type-checked): the full cross-origin pending-login-cookie round trip, a
real click choosing a tenant, the post-selection redirect, and the
missing/expired-cookie error path, all driven against a throwaway server
standing in for enterprise-auth's exact wire contract. GET /auth/features (enterprise/internal/authhandler) reports whether
OIDC/SAML are configured, for /web's settings page to conditionally
render — independent of whether a login button actually exists yet in
the UI (it doesn't yet; a user still has to be sent to
/auth/oidc/login//auth/saml/login by some means other than clicking
something in web, since no page links there).
Implemented for the one machine caller. /alerting's evaluator is
the sole service-to-service caller (POST /query, to evaluate rule
conditions across tenants). It presents a long-lived, signed
(HS256/JWT) RoleService credential, minted offline via
enterprise-auth -mint-service-token=alerting (an operator action, not
a network-reachable endpoint) and configured via API_SERVICE_TOKEN.
enterprise/internal/session.Manager issues and validates this token;
enterprise/internal/authhandler's POST /internal/authorize resolves
it. RoleService is a distinct, non-comparable lane on the Role type
(api/authz.Role.Satisfies) — a service credential can never
satisfy a human-role check and vice versa, verified by exhaustive
table-driven tests (api/authz/authz_test.go).
Session/token integrity. Tokens are HS256-signed JWTs with a single
shared signing key (ENTERPRISE_SESSION_SIGNING_KEY, ≥32 bytes,
required at enterprise-auth startup). Compromise of this key lets an
attacker forge any identity, including RoleService — it is the single
highest-value secret in the enterprise deployment and should be treated
accordingly (a real KMS/secrets-manager-backed value, not the
docker-compose.yml/Helm chart's dev-only literal). Token validation
(enterprise/internal/session.Manager.Validate) collapses every failure
mode — bad signature, malformed token, expired — into one
ErrInvalidToken, deliberately not distinguishing "expired" from
"forged" so a caller can't be tempted to treat either as a softer case.
Authorization (RBAC)
Live and enforced. POST /query and every /dashboards endpoint in
api require a minimum role, resolved per-request via
api/authz.RequireRole/RequireRoleOrService calling
enterprise-auth. Roles: Viewer < Editor < Admin < Owner, plus the
separate RoleService lane above. GET /dashboards is Viewer+;
create/update/delete require Editor+ (api/dashboards/ handler.go). A nil Authorizer (no ENTERPRISE_AUTH_URL configured)
is a deliberate no-op, matching Phase 0-3's no-auth behavior — this is
correct default-open-for-single-tenant behavior, not an oversight, but
means an operator who forgets to set ENTERPRISE_AUTH_URL in a
multi-tenant deployment gets no enforcement at all, silently. Worth a
deployment-time check a real rollout should add (not built here).
Now enforced: the RBAC matrix's (own/granted) qualifier for
Editor-level dashboard actions. dashboard_permissions
(metadata/migrations/0024_create_dashboard_permissions.sql, tightened
by 0033_restrict_dashboard_permissions_role.sql) is read via
api/dashboards.PermissionStore — a core-defined interface, same shape
as queryapi.AuditLogger — implemented by
enterprise/internal/rbacstore.DashboardPermissions and wired in only
by enterprise/cmd/enterprise-api. A plain Editor may now only
edit/delete a dashboard (or its panels) they created, or one where a
grant raises their effective role to Editor; Admin/Owner still act on
any dashboard in their tenant. Managing grants themselves
(PUT/DELETE /dashboards/{id}/permissions/{userId}) is deliberately
stricter than editing content — only the creator or Admin/Owner may
grant or revoke, never a user who can edit only because of a grant
(closes a self-escalation path a looser check would allow). Verified by
api/dashboards/handler_test.go's fake-store tests (the ownership/
grant/admin matrix, plus the granted-editor-cannot-manage-grants
regression case) — real integration tests against a live Postgres exist
in enterprise/internal/rbacstore/rbacstore_test.go but, like the rest
of this phase's rbacstore work, have not been run against one in this
environment. A plain api/cmd/api deployment with RBAC enforcement on
but no enterprise permission service wired still enforces ownership/
Admin — only the "granted" bonus and grant management are unavailable
there (nil PermissionStore is a documented no-op, same shape as a nil
Authorizer).
Application-layer tenant scoping (dashboards only). Every
dashboards store query filters WHERE tenant_id = $identity.TenantID
(api/dashboards/store.go), and the handler resolves that
tenant ID from the RBAC-authenticated identity's context
(authz.IdentityFromContext), never from a client-supplied request
field. This closes a real gap found during this document's own review:
Dashboard.TenantID is a JSON-tagged, client-settable field
(api/dashboards/types.go), and the original handler/store
implementation trusted it directly on create/update and applied no
tenant_id filter at all on list/get/update/delete — meaning any
authenticated user could read, modify, or delete any other tenant's
dashboards simply by supplying (or guessing) their UUID, or spoof
tenant_id on create/import to write into a tenant they don't belong
to. Fixed as part of this task, with regression tests proving
cross-tenant access now returns 404 (not 403, which would itself leak
that the ID exists under a different tenant) —
api/dashboards/handler_test.go's
TestCrossTenant*/TestCreateDashboardIgnoresClientSuppliedTenantID/
TestImportIgnoresExportedTenantID. This same class of bug should be
assumed present anywhere else client-supplied identifiers cross a tenant
boundary until proven otherwise by an adversarial test — see task 8's
adversarial test suite for what's been checked so far and what hasn't.
Query-path tenant scoping: none — see the top of this document.
RBAC's role check on POST /query answers "is this identity allowed to
run a query," not "does this query's result set respect tenant
boundaries" — it can't, because the executor has no tenant concept to
enforce.
Audit logging
Live, and independently verified against a real Postgres (not just
written) — enterprise/internal/audit's integration tests. Two
independent defenses back "no update/delete path from the application
layer":
- A dedicated
audit_writerPostgres role with onlyINSERT+SELECTgrants (metadata/migrations/0012-0014), via its ownpgxpool.Pool— never the sharedcairnobsrole/pool every other store uses. - A
BEFORE UPDATE OR DELETE ... RAISE EXCEPTIONtrigger (metadata/migrations/0015-0016) that rejects the operation for any role, including the table owner — confirmed live: even thecairnobsrole cannotUPDATEa row without first disabling the trigger, a privileged operation distinct from ordinary application access.
Tamper detection, not tamper prevention against a privileged
attacker. Rows are hash-chained (prev_hash/row_hash = SHA256(prev_hash || canonical_fields), serialized under
pg_advisory_xact_lock so concurrent writers can't fork the chain —
verified with a 20-goroutine concurrency test against live Postgres).
The chain alone only proves internal self-consistency: a Postgres
superuser (or anyone who compromises that credential) can wipe
audit_log and regenerate a perfectly self-consistent new chain from
row 1. enterprise/internal/audit.Checkpointer periodically ships a
rolling hash to an external CheckpointSink for exactly this reason —
FileSink (the only implementation built so far) is explicitly
documented as a dev/testing stand-in, not a real external-anchoring
guarantee (it writes to a local file the same privileged attacker could
also reach). A real deployment needs a genuine CheckpointSink
(S3 with Object Lock, or equivalent, reachable by a credential the
database administrator doesn't also hold) before the "prove nothing was
altered after the fact" claim actually holds against a privileged
insider.
Fail-open by design for routine queries. queryapi.Handler.logAudit
(api/queryapi/handler.go) logs a write failure and otherwise
ignores it — an audit-log outage does not take down the query path. This
is a deliberate availability-over-completeness tradeoff: it means a
brief audit outage produces an under-logged (not over-blocked) window.
No privileged/administrative action (role change, SSO config change,
notification-target secret reveal) currently exists to enforce
fail-closed on, since none of those flows are built yet
(enterprise/internal/rbacstore has no HTTP handlers) — when they are,
they should fail closed per /docs/phase-4-isolation-design.md's
original policy, and that policy is not yet exercised by any real code
path.
What's logged: query text, language, row count, duration,
success/error — not result contents. Source/EventType fields exist
(SourceAPI/SourceWeb/SourceCLI/SourceAlerting,
EventQuery/EventRoleChange/EventGrantChange/
EventSSOConfigChange/EventSecretReveal) but only EventQuery from
SourceAPI is actually wired to a call site
(queryapi.Handler.logAudit) — the others are typed placeholders for
work not yet built (there's no role-change/grant-change/SSO-config
handler to call them from).
Known residual risks (explicitly out of scope, not silently assumed away)
Per /PROJECT-SPEC.md's Phase 4 non-goals, restated here in threat-model
terms:
- A privileged ClickHouse/Postgres administrator is not defended against. Every isolation and audit-integrity guarantee in this document is a structural defense against application-layer bugs and injection — not against someone holding database superuser credentials. That's an operational control (credential custody, infrastructure access review), out of scope for this system's own code.
system.query_logmetadata leakage — now closed and verified live against the pinned version (clickhouse/clickhouse-server:24.8), with a real, non-obvious wrinkle: a freshly created tenant user was not default-denied fromsystem.*the way the original design assumed (ProvisionClickHousenow issues an explicitREVOKE SELECT ON system.* FROM <user>— see that function's doc comment). Confirming this live also surfaced a genuine ClickHouse behavioral split the design doc didn't anticipate:system.query_logis a real access-checked table (the REVOKE makes it hard-deny,ACCESS_DENIED), butsystem.tablesis a filtered catalog view that ClickHouse 24.8 never denies outright regardless of grants — it just silently returns zero rows for a properly-revoked user. Both outcomes close the actual leak (no other tenant's query text or database/table names are visible either way);tenantprovision_test.go'sTestProvisionedUserCannotReadSystemTableswas corrected to assert what each table actually does (hard error forquery_log, verified-empty-and-no-foreign-database-names fortables) rather than demanding a hard error from both. Still contingent on the deployment-shape caveat at the top of this document: this only holds whenenterprise-api(not plainapi) is actually serving traffic.- No deny-override grants —
dashboard_permissionsis additive-only by design; a full allow/deny ACL system is unbuilt, future work. - No data retention/deletion policy for a deprovisioned tenant —
the
tenants.statusstate machine includesdeprovisioning, but what actually happens to that tenant's ClickHouse/Tantivy/Postgres data is an unanswered compliance question, not a designed-and-deferred one. - No general multi-cluster orchestration —
/deploy's Helm chart/Operator (/deploy/README.md) proves the K8s-side per-tenant secret-management model, not a fully general multi-cluster system. Now applied to a real (localkind) live cluster in this environment — see that README's verification section — but only a single-cluster, single-node test, not a real multi-cluster topology.
Deployment/network assumptions
enterprise-auth's/internal/authorizeand/auth/featuresendpoints have no authentication of their own beyond the credentials they're validating — they must be reachable only from inside the cluster/trusted network (api/alerting/web), never exposed publicly. Nothing in this codebase enforces that at the network layer; it's a deployment responsibility (NetworkPolicy, or equivalent) not yet codified in/deploy/helm/cairnobs.ENTERPRISE_SESSION_SIGNING_KEY, ClickHouse/Postgres passwords, and (once minted) thealertingservice token are all K8sSecretobjects in the Helm chart (/deploy/helm/cairnobs/templates/ secrets.yaml) — standard K8sSecretsemantics apply (base64, not encrypted at rest without a cluster-levelEncryptionConfiguration). No secrets-manager integration (Vault, cloud KMS) exists; the chart documents this as an operator decision, not something it enforces.
Summary: what's actually enforced today
| Control | Status |
|---|---|
Role-based access control on /query, /dashboards |
Enforced |
alerting↔api service-identity credential |
Enforced |
| Tenant scoping on dashboards (control-plane data) | Enforced |
ClickHouse per-tenant provisioning (tenantprovision) |
Enforced, verified live against clickhouse/clickhouse-server:24.8 — real CREATE DATABASE/CREATE USER/GRANT/REVOKE, real two-tenant cross-read probe |
ClickHouse query routing (chrunner) |
Enforced, verified live — real per-tenant connections, cross-tenant raw-SQL probe passes; only applies when enterprise-api serves traffic, not plain api |
system.* ClickHouse metadata isolation |
Enforced, verified live — system.query_log hard-denies, system.tables returns zero foreign rows (see "Known residual risks" below for the ClickHouse-version-specific split between the two) |
Tantivy per-tenant index routing (search/src/registry.rs) |
Enforced, verified live — real Tantivy indices, real cross-tenant probe, all passing |
Tantivy tenant_id resolution (enterprise/internal/searchclient) |
Enforced, verified live — real gRPC wire-level test |
| Ingest tenant identity (credential validation, tagging) | Built and tested — fail-closed TenantResolver, tenant_id Kafka header attached per record |
| Ingest tenant write-routing, ClickHouse | Enforced, verified live — enterprise-ingest/chwriter.Registry route each tagged batch to its tenant's own database, fail-closed on an untagged/unprovisioned tenant; both Docker-free and live-ClickHouse tests pass. Active-tenant snapshot refreshes every minute (Registry.StartRefreshing) — a deprovisioned tenant loses write access within a minute, not "until the next restart" |
| Ingest tenant write-routing, Tantivy | Built and genuinely verified — search/src/consumer.rs routes each record into its own tenant's index via IndexRegistry, same registry the (already-verified) read side uses; no Docker needed, real tests pass. Active-tenant-gated too: tenants::ActiveTenantTracker polls enterprise-auth every 60s (off unless configured), refusing any tenant not in the polled allowlist — same one-minute staleness bound as ClickHouse's now-refreshing snapshot, no more asymmetry between the two |
Deployment actually routing traffic to enterprise-api (Helm) |
Enforced, verified live — api/enterprise-api are mutually exclusive, same flag as RBAC/audit/SSO; a real helm install against a real kind cluster confirmed the cairnobs-api Deployment runs cairnobs-enterprise-api:latest with enterprise.enabled=true, real endpoints behind the cairnobs-api Service, not just helm template's rendered YAML |
Deployment actually routing traffic to enterprise-api (docker-compose) |
Enforced, verified live — api/enterprise-api are mutually exclusive via COMPOSE_PROFILES, same flag choice as Helm's enterprise.enabled; a real docker compose up of enterprise-api was run in this environment (and caught/fixed a startup-crashing duplicate GET /healthz route registration bug in the process), not just docker compose config |
| Human SSO login — OIDC | Enforced, verified live — real login against a real Auth0 developer tenant, full browser round trip; correctly failed closed on an identity with no tenant_memberships row, then succeeded and issued a real session after -grant-membership-*, with POST /internal/authorize returning exactly the granted tenant/role |
| Human SSO login — SAML | Enforced, verified live — real login against Auth0's SAML2 Web App addon acting as a real SAML IdP, over real (self-signed, dev-only) TLS; a real signed assertion validated (audience, destination, signature), landed on /select-tenant with real memberships, and POST /internal/authorize confirmed the selected tenant/role. Found and fixed a real bug in the process: loginhandler.go's cookies decided Secure from r.TLS != nil alone, which is wrong behind any TLS-terminating reverse proxy (the deployment shape this handler actually runs in) — enterprise-auth never terminates TLS itself, so r.TLS was nil even over a genuinely HTTPS connection, silently dropping Secure and breaking SAML's SameSite=None cookie |
| Multi-tenant-membership login (tenant picker) | Enforced, verified live — a real Auth0 identity with two real tenant memberships (acme Admin, globex Viewer) landed on the real /select-tenant page against the real enterprise-auth container, rendered both with correct display names/roles via a real credentialed cross-origin GET /auth/memberships, and selecting either one issued a session that POST /internal/authorize confirmed matched — the selection genuinely determines the issued session's tenant, not just renders correctly. This pass also found and fixed a real bug: web/Dockerfile never declared ARG/ENV for VITE_ALERTING_API_BASE_URL/VITE_ENTERPRISE_AUTH_BASE_URL, so docker-compose.yml's build args for them were silently dropped, leaving enterpriseAuthBase undefined in the built bundle |
Per-resource dashboard grants (own/granted) |
Enforced, verified live — real Postgres integration tests for dashboard_permissions CRUD and the PermissionStore adapter all pass (only when enterprise-api serves traffic — plain api falls back to own/Admin only) |
| Query audit logging (routine queries) | Enforced, fail-open, and now wired to a real writer via enterprise-api (audit.QueryAPILogger) |
| Audit log tamper detection (hash chain) | Enforced, verified live |
| Audit log tamper prevention (external anchoring) | Design only — FileSink is a dev stand-in |
| Mid-provisioning-race handling (evaluator ticks against a not-yet-active tenant) | Closed on both storage engines — see api/queryapi/tenant_isolation_gap_test.go; ClickHouse verified Docker-free (structural, not just tested), Tantivy fixed and verified Docker-free after finding it was a real gap, not just an unverified assumption |
| Protection against a privileged DB administrator | Explicit non-goal |