Closes the last named "isolation mechanism" gap: search.proto gains a tenant_id field on SearchRequest; search/src/registry.rs's IndexRegistry resolves it to an on-demand-opened, per-tenant Tantivy index (empty tenant_id keeps today's single default index, so this is purely additive); enterprise/internal/searchclient sets that field from the authenticated request identity in ctx, mirroring chrunner's exact fail-closed "never a parameter" shape. Wired into enterprise-api in place of the shared api/searchclient. Unlike the ClickHouse pieces from the previous two commits, this one is genuinely verified end to end in this environment: Tantivy is an embedded library, not a networked service, so both the Rust index registry (cargo test, cargo clippy --all-targets -- -D warnings, both clean) and the Go client (a real in-process gRPC server) could actually run. registry.rs's tenant_index_is_isolated_from_default_and_other_tenants seeds three real indices with the same term and confirms a tenant-scoped search returns only that tenant's document -- item 3 of the isolation design doc's verification plan, closed for real, not just written. With both ClickHouse and Tantivy isolation now built, the single largest remaining gap is no longer a missing mechanism: it's that nothing forces or flags whether a deployment actually runs enterprise-api instead of plain api, and that ingest itself has no tenant concept for either storage engine (every record still lands in the one shared database/ index no matter what -- undesigned, not just unbuilt). Updated the threat model, architecture doc, CLAUDE.md, and both READMEs accordingly.
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Sentry Architecture
Status: Updated through Phase 4. The component map/diagram below is still the Phase 0 request path (agent → ingest → ClickHouse → api → web) — it was never redrawn for the full-text search, dashboards/ alerting, or enterprise/ additions; see each phase's runbook (
/docs/phase-N-runbook.md) for what was actually verified when it shipped. The component responsibilities table and the sections below the diagram are kept current. Phase 0's original framing ("draft, correct as needed") still applies to anything not yet built.
Mission
Open-core, Kubernetes-native centralized logging platform. Compete with Splunk on features; win on cost-per-GB, a modern language stack, and multi-tenant RBAC that's actually honest about its guarantees.
Component map
┌──────────┐ gRPC/mTLS ┌──────────┐ produce ┌───────────┐ consume ┌────────────┐
│ agent │ ────────────▶ │ ingest │ ──────────▶ │ Redpanda │ ────────▶ │ ingest │
│ (Rust) │ │ (Go) │ │ (Kafka API)│ │ consumer │
└──────────┘ └──────────┘ └───────────┘ │ (Go) │
└──────┬─────┘
│ batch INSERT
▼
┌────────────┐
│ ClickHouse │
└─────┬──────┘
│ SQL
┌───────────▼───────────┐
│ api (Go: gRPC+REST) │
└───────────┬───────────┘
│ REST
┌───────────▼───────────┐
│ web (SvelteKit) │
└────────────────────────┘
Decision (confirmed 2026-08-12): Redpanda stays in the Phase 0 path. The
ingest service's gRPC front end produces to Redpanda rather than writing
ClickHouse directly; a separate consumer path reads from Redpanda and batches
inserts into ClickHouse. This exercises the real transport layer from day
one instead of deferring it, and keeps Kafka credentials off the edge agent.
Storage / query split
- ClickHouse is the analytical store of record for structured log data:
timestamp, host, service, severity, message, plus a
Map(String,String)for arbitrary structured fields. Partitioned by day, ordered by(service, timestamp). - Tantivy (Phase 1) will provide full-text indexing over the
messagefield and unstructured payloads, queried out-of-band from ClickHouse and joined by a log identifier. Not built in Phase 0. - Schema-on-write using OTel semantic conventions as the default log
schema; schema-on-read fallback for unstructured/raw text that doesn't fit
the structured columns (captured via the
Mapcolumn and/or a raw passthrough field). - Postgres (Phase 3) holds control-plane config only — dashboards,
panels, notification targets, alert rules/state, delivery log, and
(Phase 4) tenants/users/tenant_memberships/audit_log. Never log data;
ClickHouse/Tantivy stay the only place a log record itself lives. See
/docs/phase-3-dashboard-design.mdfor why ClickHouse's MergeTree family isn't a fit for this (no real row-level locking/transactional read-modify-write).
This split is not to be changed without discussion — see CLAUDE.md.
Component responsibilities
| Component | Responsibility |
|---|---|
agent (Rust, musl) |
Tail a log file or read journald; parse RFC 5424 syslog with raw passthrough fallback; batch; ship via gRPC/mTLS to ingest. Windows (ETW/Event Log) code exists but is unverified on real Windows hardware — see /agent/README.md. |
proto |
Shared .proto contracts for agent↔ingest and api↔search gRPC, versioned independently of either side. |
transport |
Redpanda docker-compose + topic provisioning scripts. No application code. |
ingest (Go) |
gRPC server accepting agent connections; produces normalized OTel-log-like records to Redpanda; separate consumer reads from Redpanda and batch-writes to ClickHouse. No tenant concept — every record lands in the one shared logs table regardless of source (see "Tenant isolation" below). |
storage |
ClickHouse schema migrations + docker-compose for local/homelab. |
search (Rust, Phase 1) |
Consumes the same Redpanda topic ingest does (own offset tracking), builds a Tantivy full-text index over message, serves matches over gRPC. Writes always go to one shared (default) index (ingest isn't tenant-aware); reads can be scoped per-tenant via SearchRequest.tenant_id and src/registry.rs's IndexRegistry (Phase 4) — see "Tenant isolation" below. |
api (Go) |
gRPC + REST gateway. POST /query compiles pipe-syntax or raw SQL to one IR, executed across ClickHouse/Tantivy (/docs/query-language-design.md). internal/dashboards is CRUD only — panel query execution happens client-side, reusing /query. internal/authz (Phase 4) enforces RBAC via a network call to enterprise-auth, never an import. |
alerting (Go, Phase 3) |
Evaluates alert rules on an interval, calls api's POST /query (via a RoleService credential once Phase 4 auth is configured — see /docs/phase-4-isolation-design.md's alerting↔api gap), delivers firing/resolved notifications (webhook/Slack/PagerDuty). |
enterprise (Go, commercial license, Phase 4) |
OIDC login (internal/loginhandler's /auth/oidc/login+/auth/oidc/callback, real IdP round trip, verified with a fake IdP but not a real external one), RBAC storage (internal/rbacstore), session/service-token issuance (internal/session), the append-only audit log (internal/audit), enterprise-auth's HTTP surface (/internal/authorize, /auth/features), per-tenant ClickHouse provisioning (internal/tenantprovision) and query routing (internal/chrunner), and cmd/enterprise-api — a second binary combining core's api/queryapi/api/dashboards handlers with these tenant-aware implementations. Never imported by core — see "Licensing boundary" below. Also internal/searchclient (per-tenant Tantivy routing, wired the same way into search). Does not yet include SAML's login ACS handler (protocol mechanics only) — see /docs/security/threat-model.md. |
web (SvelteKit, static build) |
Query bar, dashboards, alerts, and (Phase 4) a settings page that renders SSO status via a runtime capability check (GET /auth/features) rather than bundling enterprise-licensed components. |
cli (sentryctl) |
ping, query, dashboards (list/get/apply), alerts (list/get/apply). $SENTRYCTL_TOKEN, if set, is forwarded as a Bearer credential (Phase 4). |
deploy |
A Helm chart covering every docker-compose.yml service, plus (Phase 4) a small Go Operator managing one CRD (Tenant) that provisions a per-tenant ClickHouse credential Secret. Never applied to a live cluster in the environment this was built in — see /deploy/README.md's verification section before trusting it. |
Tenant isolation model (Phase 4)
Full design rationale: /docs/phase-4-isolation-design.md. Full honest
accounting of what's actually enforced vs. designed-only:
/docs/security/threat-model.md — read that before assuming any claim
below holds for log data specifically.
As designed: one dedicated ClickHouse database + narrowly-granted
user per tenant (never the shared default/admin credential), one
dedicated Tantivy index directory per tenant, system.* access revoked
per tenant, connections resolved from an immutable per-tenant map (never
a shared pool with session-level USE). Isolation lives at the
connection layer — every query, compiled or raw SQL, is forced
through a tenant-scoped connection the database's own access control
enforces — not at the query-compiler layer, since Phase 2's raw-SQL
escape hatch is opaque to any compiler-injected filter.
As built, currently:
- Role-based access control (
api/authz) is live on/queryand/dashboards, resolved viaenterprise-authover HTTP. - Control-plane tenant scoping is live for dashboards
(
api/dashboards's store filters every query by the authenticated identity's tenant, never a client-supplied field). - The
alerting↔apiservice-identity gap (task 2's finding) is closed: aRoleServicecredential, distinct from every human role. - ClickHouse connection-layer isolation is built, but lives in a
second binary:
enterprise/internal/tenantprovision(realCREATE DATABASE/CREATE USER/GRANTagainst ClickHouse) andenterprise/internal/chrunner(a per-tenant connection registry implementingapi/querylang/executor.SQLRunner, resolving the right tenant's connection from the authenticated identity in request context) are wired intoenterprise/cmd/enterprise-api— a binary that imports bothapi's handler packages and enterprise's tenant-aware implementations (the allowedenterprise → apiimport direction; core still never importsenterprise/). Real integration tests assert a tenant cannot read another tenant's database by fully-qualified name, and thatsystem.query_log/system.tables/SHOW DATABASESdon't leak across tenants either — written but not yet run against a live ClickHouse in this environment, see/docs/security/threat-model.mdand/docs/phase-4-runbook.md's verification-status sections. Plainapi/cmd/apistill exists, unchanged, with its single shared connection — nothing forces a deployment to runenterprise-apiinstead, and nothing flags it if it doesn't. - Tantivy index-layer isolation is built, and verified.
search/src/registry.rs'sIndexRegistryresolvesSearchRequest.tenant_id(added toproto/sentry/search/v1/ search.proto) to its own on-disk index, opened on demand;enterprise/internal/searchclientsets that field from the authenticated request identity, the same "read from ctx, fail closed" shapechrunneruses. Unlike the ClickHouse pieces, this one actually ran in the environment it was built in — Tantivy is an embedded library, so the cross-tenant isolation probe needed no live database or Docker to execute for real, and it passed. - Neither storage engine's isolation extends to ingest: every record
ingestproduces lands in the one shared ClickHouse database and the one shared (default) Tantivy index regardless of tenant. A newly-provisioned tenant's database/index are real and isolated at query time — and permanently empty until something upstream ofchrunner/searchclientbecomes tenant-aware on the write side, which is undesigned, not merely unbuilt. deploy/operator'sTenantCRD still manages only the K8s-side artifact (a credential Secret); the Helm chart has no service definition forenterprise-apiyet.
The deployment-topology gap — giving the system an actual way to route
traffic to enterprise-api instead of api (a Helm service, or at
minimum a documented, enforced convention) — is now the single largest
remaining gap between this system and the isolation model it was
designed to have; both storage engines' connection/index-layer
mechanisms themselves are built.
Licensing boundary
AGPLv3 for core + agents. Enterprise features (SSO, RBAC storage, audit
logging) live under enterprise/ (commercial license stub, added
Phase 4). AGPL code must never import from enterprise/ — enforced in
CI by hack/check-tenant-boundary.sh, which greps every build for the
import edge. Where core needs a decision only enterprise/ can make
(is this request authorized, what SSO is configured), it calls
enterprise-auth over plain HTTP instead
(api/authz.HTTPAuthorizer, web's GET /auth/features) —
the same "network boundary, not import boundary" shape /alerting↔api
already used before enterprise/ existed.
Non-negotiables carried from CLAUDE.md
- Rust agent: statically linked musl,
x86_64-unknown-linux-muslandaarch64-unknown-linux-musl, no glibc runtime deps. - Windows support via native ETW/Event Log API, not WSL — designed (Phase 1) but still unverified on real Windows hardware.
- Every UI action maps to a documented REST/gRPC call — no UI-only logic.
- Pinned stack (see CLAUDE.md table) — no substitutions without discussion.
Explicitly out of scope (current, Phase 4)
Per /CLAUDE.md's Phase 4 non-goals and /docs/security/threat-model.md:
deny-override permission grants, a data retention/deletion policy for
deprovisioned tenants, general multi-cluster orchestration in /deploy,
and any defense against a privileged ClickHouse/Postgres administrator —
every isolation and audit-integrity guarantee here is a structural
defense against application-layer bugs, not an operational control.
Open questions for you to resolve
- Retention/TTL policy for the ClickHouse
logstable — not specified yet, deferred until storage sizing is a real concern. - Exact OTel log schema field mapping (which OTel resource/log attributes map to which ClickHouse columns) — Phase 0 uses a minimal subset (timestamp, host, service, severity, message, attributes map); full mapping deferred.
- mTLS certificate provisioning/rotation story for agents — Phase 0 will use a static dev CA and manually issued certs; production PKI design is out of scope here.