Closes the local/dev half of a gap named repeatedly across this phase's docs: Helm already made api/enterprise-api mutually exclusive (same enterprise.enabled flag that turns on RBAC/audit/SSO, both rendering to the same Service name/port); docker-compose.yml let both run side by side, with nothing actually pointing at enterprise-api by default. Mechanism: both services now carry a `profiles` entry (single-tenant / enterprise), selected via COMPOSE_PROFILES -- a new checked-in .env sets single-tenant as the zero-config default (unchanged behavior for anyone who doesn't touch it), and `COMPOSE_PROFILES=enterprise docker compose up` swaps to enterprise-api instead. Docker Compose profiles are purely additive (no "profile X excludes service Y" primitive), so true exclusivity comes from both being profile-gated with no shared default profile, not from one excluding the other directly. Mirrors Helm's same-Service-name trick so alerting's API_QUERY_URL and web's VITE_API_BASE_URL need zero conditional logic either way: enterprise-api now maps host port 8080 (was 8083, its own binary default -- overridden via HTTP_LISTEN_ADDR) and carries a `networks.default.aliases: [api]` entry, so whichever binary is actually running answers on the same compose-network hostname and host port. alerting's and web's depends_on for api/enterprise-api are now `required: false` (Compose's supported "optional dependency" shape) -- without it, compose errors on the inactive one rather than just skipping it, since depends_on doesn't otherwise know about profiles. Verified for real in this environment via `docker compose config` (renders and validates the merged YAML without needing a daemon): confirmed api/enterprise-api never both appear in --services output for either profile selection, confirmed enterprise-api's rendered block has port 8080/alias "api"/HTTP_LISTEN_ADDR ":8080" when the enterprise profile is active, and confirmed `docker compose run enterprise-api ...`/`docker compose build enterprise-api` (used by enterprise/README.md's and phase-4-runbook.md's provisioning steps) still work regardless of the active profile -- explicit service references bypass profile filtering, confirmed by the commands reaching a daemon-connection permission error rather than a profile-resolution error. Not verified: an actual `docker compose up` against a real daemon, still unavailable in this environment. Docs updated in lockstep -- CLAUDE.md, threat-model.md (including its summary table), phase-4-runbook.md (new §10a, §8's provisioning commands updated for the new port/profile), enterprise/README.md.
280 lines
16 KiB
Markdown
280 lines
16 KiB
Markdown
# Project: Sentry — Distributed Log Aggregation & Observability Platform
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## Mission
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Build an open-core, Kubernetes-native centralized logging platform that rivals
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Splunk on features but wins on cost-per-GB, modern language stack, and honest
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multi-tenant RBAC. Full architecture spec is in `/docs/architecture.md` — read
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it before touching any component. Do not deviate from the storage/query split
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described there without flagging it to me first.
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## Non-negotiable constraints
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- Distro-agnostic Linux agent: must run identically on RHEL/Debian/Arch/SUSE
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derivatives via a statically-linked musl binary. No glibc runtime deps.
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- Windows support via native ETW/Event Log API, not a WSL shim.
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- AGPLv3 for core + agents. Enterprise module (SSO/multi-tenancy/compliance)
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lives in a separate `enterprise/` directory under a commercial license stub
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— keep the boundary clean from day one, don't let AGPL code import from it.
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- Schema-on-write with OTel semantic conventions as the default schema, with
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schema-on-read fallback for unstructured text.
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- Every UI action must correspond to a documented REST/gRPC call. No
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UI-only logic. CLI (`sentryctl`) and Terraform provider are first-class,
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not afterthoughts.
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## Tech stack (pinned — do not substitute without discussion)
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| Component | Language/Tool |
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|-------------------|------------------------|
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| Edge agent | Rust, musl target |
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| Transport | Redpanda (Kafka API) |
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| Ingest/parse | Go |
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| Analytical store | ClickHouse |
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| Full-text index | Tantivy (Rust) |
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| Control plane/API | Go, gRPC + REST gateway |
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| Frontend | SvelteKit + TypeScript |
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| Deployment | Kubernetes Operator (Go, kubebuilder), Helm, docker-compose for local/homelab |
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## Repo conventions
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- Monorepo, one top-level dir per component (see structure below).
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- Rust: workspace-based, `cargo clippy --all-targets -- -D warnings` must pass.
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- Go: standard `go vet` + `golangci-lint`, no globals for shared state.
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- Every component ships with: unit tests, a `README.md`, and a Dockerfile
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using distroless or scratch base images where feasible.
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- Conventional commits. Every PR-sized change should be a logically complete,
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independently revertible unit.
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- Prefer boring, well-understood dependencies over novel ones. This is
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infrastructure software; operators need to trust it.
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## What "done" looks like for Phase 0 (MVP)
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**Status: shipped.** A single log line, generated on a Linux host by the
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Rust agent, flows: agent → Redpanda → Go ingest service → ClickHouse, and
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is queryable via a minimal SQL endpoint and visible in a bare-bones
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SvelteKit table view. Verified end-to-end on real hardware, not just in
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CI — see `/docs/phase-0-runbook.md`. No alerting, no multi-tenancy, no
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dashboards — that discipline held for the whole phase.
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## What "done" looks like for Phase 1
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**Status: shipped.** A Windows Event Log entry and a Linux journald entry
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are both queryable via SQL (the ClickHouse path) and via free-text search
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(the Tantivy path), from the same UI, within a few seconds of being
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generated. Verified end-to-end on the live stack, including the same
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`record_id` coming back from both query paths for the same record — see
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`/docs/phase-1-runbook.md`.
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ETW and WEF (Windows Event Forwarding) were *designed* in this phase but
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not required to be running for "done": ETW ships behind a feature flag
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most environments won't enable (it needs elevated privileges), and WEF's
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receiver-side was explicitly deferred rather than built. Only the Event
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Log source needed to actually be running end-to-end, and did. The
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Windows-specific agent code itself (`EvtSubscribe`, ETW, service
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registration) remains unverified on real Windows — no Windows toolchain
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existed anywhere in the environment this was built in; flagged
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prominently in `/agent/README.md` and the runbook.
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## What "done" looks like for Phase 2
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A single query bar in the web UI and a single `sentryctl query` command
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can express filter + free-text + stats in one query (e.g. `service=api |
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where status>=500 | stats count by host | sort -count`, or
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`message:"connection refused" | stats count by host`), execute correctly
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against both ClickHouse and Tantivy in one compiled plan, and return in
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well under a second for a 1M-row fixture dataset (rough benchmark, not a
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formal SLA — see `/docs/phase-2-runbook.md` for the actual measurement).
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Raw ClickHouse SQL remains available as an escape hatch, compiling to the
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same execution plan/IR as the pipe syntax so performance doesn't depend
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on which syntax a query uses.
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Non-goals for this phase (same "resist scope creep" discipline as every
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phase so far): no alerting, no dashboards, no multi-tenancy — this phase
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is the query layer only. The two separate placeholder pages/endpoints
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from Phase 0/1 (`/query` raw-SQL-only, `/search` free-text-only) are
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retired, replaced by one `/query` endpoint and one query page.
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See `/docs/query-language-design.md` for the grammar, IR, and
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ClickHouse/Tantivy routing strategy, and
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`/docs/query-language-reference.md` for the user-facing syntax reference
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once built.
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## What "done" looks like for Phase 3
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**Status: shipped.** A user can build a multi-panel dashboard from saved Phase 2 queries (at
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least a line chart panel and a table panel, working end-to-end against
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live data), save an alert rule that fires a Slack webhook when a
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condition is met (threshold comparison, or "absence" — the query returned
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zero rows in its own time window), and see the delivery attempt logged —
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all from the web UI, without touching the API directly. See
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`/docs/phase-3-dashboard-design.md` and `/docs/phase-3-alerting-design.md`
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for the data models and the alerting evaluator's firing/resolved state
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machine, and `/docs/phase-3-runbook.md` for the live-stack verification,
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including a load test of the alert evaluator against ~500 concurrent
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rules.
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This phase adds PostgreSQL as a new pinned-stack component (see the
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dashboard design doc for why ClickHouse can't do this job — dashboards
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and alert state need real row-level locking and transactional
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read-modify-write, which ClickHouse's MergeTree family doesn't provide),
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scoped strictly to control-plane config: dashboards, panels, notification
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targets, alert rules, alert state, delivery log. Log data itself stays on
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ClickHouse/Tantivy only, unchanged.
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Non-goals for this phase (same discipline as every phase so far):
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- No multi-tenancy enforcement and no `enterprise/` module work — single
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tenant/org assumed. Most new tables (`dashboards`, `alert_rules`,
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`notification_targets`) carry a `tenant_id` column so part of Phase 4's
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retrofit doesn't require a migration + backfill — but `alert_state` and
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`delivery_log` do not (an inconsistency found during Phase 4 planning,
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not caught at the time); Phase 4 adds `tenant_id` to those two and
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backfills via a join through `alert_rules.id`, and — per
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`/docs/phase-4-isolation-design.md` — tenant isolation itself turned
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out to live at the ClickHouse/Tantivy connection layer, not via these
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columns at all, since Phase 2's raw-SQL escape hatch can never be
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covered by a row filter regardless of which tables carry one.
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- No raw-SQL dashboard panels (time-range injection isn't reliable
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against arbitrary SQL) — pipe-syntax queries only.
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- No per-group/multi-row threshold alerting (e.g. "alert separately per
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host") — a threshold rule's query must resolve to a single row.
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- No debounce on the way down — a firing alert resolves on the first
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false evaluation, no symmetric "stay firing for N more minutes" hold.
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- No Kubernetes Operator/Helm deployment work — still docker-compose,
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`/deploy` remains stubbed.
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## What "done" looks like for Phase 4
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**Status: in progress, not shipped.** RBAC enforcement (`api/authz`), the
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`alerting`↔`api` service-identity credential, tenant-scoped dashboards,
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append-only audit logging, and — since the second pass on this phase —
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real per-tenant ClickHouse provisioning and query routing
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(`enterprise/internal/tenantprovision`, `enterprise/internal/chrunner`,
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wired into a new `enterprise/cmd/enterprise-api` binary alongside plain
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`api/cmd/api`) are all built and tested — real integration tests exist
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for the ClickHouse pieces, but this environment lost Docker/database
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access partway through the phase, so only the audit-logging guarantees
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were actually confirmed against a live database; the rest is untested
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beyond "compiles, and skips cleanly when no live database is
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configured" (see `/docs/phase-4-runbook.md`'s verification-status
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section). Human SSO login is now built for both protocols
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(`enterprise/internal/loginhandler`: `GET /auth/oidc/login` +
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`GET /auth/oidc/callback`, and `GET /auth/saml/login` +
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`POST /auth/saml/acs` via `enterprise/internal/saml`'s `crewjam/saml`
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wiring, both issuing a real session cookie after resolving tenant/role
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from `tenant_memberships`) — genuinely verified, unlike the ClickHouse
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pieces, via a real fake IdP for each protocol that performs actual
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cryptographic signing and verification (`coreos/go-oidc`'s `oidctest`
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for OIDC, `crewjam/saml/samlidp` for SAML — `loginhandler_test.go` and
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`saml_test.go`, all passing, including the full login round trip and
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negative paths for both), though never tried against a real external IdP
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or through a running `enterprise-auth` container. Writing the SAML test
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caught and fixed two real bugs in `internal/saml.ParseResponse`: a
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missing `r.ParseForm()` call that would have silently broken every real
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ACS POST, and email-attribute matching that missed the standard LDAP
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"mail" OID IdPs send by default. Tantivy per-tenant index routing is now
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built too
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(`search/src/registry.rs` + `enterprise/internal/searchclient`) —
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**genuinely verified**, like the OIDC login flow: Tantivy is an embedded
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library, not a networked service, so the isolation probe (three tenants,
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same search term, scoped search returns only that tenant's document)
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actually ran in this environment, no Docker needed. That same
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Docker-free advantage is what caught a real bug while closing the last
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of Phase 4 task 8's four adversarial probes (a mid-provisioning tenant
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must be refused, not served): `search/src/registry.rs`'s `IndexRegistry`
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opened-or-created an index for any syntactically-valid `tenant_id`,
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meaning a query against a tenant that exists in `rbacstore` but isn't
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active yet would have silently returned zero results from a
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freshly-created empty index instead of being refused --
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`chrunner`'s ClickHouse routing had the equivalent guarantee for free
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(a mid-provisioning tenant simply isn't in its startup-built connection
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map) but Tantivy, a separate process with no Postgres access, had no
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way to know. Fixed with a new `enterprise/internal/searchclient.
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TenantChecker` (backed by `rbacstore.TenantIsActive`); both halves of
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the fix verified Docker-free (`chrunner_test.go`'s and
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`searchclient_test.go`'s `TestSearchRefusesMidProvisioningTenant`-shaped
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tests) — see `api/queryapi/tenant_isolation_gap_test.go` for the full
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accounting of all four probes, now all closed. The deployment-
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topology gap that briefly was the largest one is now closed for both
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Helm and docker-compose: `deploy/helm/sentry/templates/api.yaml`/
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`enterprise-api.yaml` are mutually exclusive on the same
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`enterprise.enabled` flag that turns on RBAC/audit/SSO, rendering to the
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same Service name/port either way — a Helm-deployed cluster can't
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accidentally run the wrong one. `docker-compose.yml`'s `api`/
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`enterprise-api` services are now the same mutually-exclusive choice,
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gated behind `COMPOSE_PROFILES` (`.env` checks in `single-tenant` as the
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zero-config default) and sharing a host port/network-alias trick so
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`alerting`/`web` need no conditional logic either way — verified via
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`docker compose config` (renders/validates without a daemon, confirms
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the two never both appear for one profile selection), not an actual
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`docker compose up` in this environment. Per-resource dashboard grants
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(the RBAC matrix's "(own/granted)"
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qualifier) are now enforced too: `api/dashboards.PermissionStore` (core
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interface) implemented by `enterprise/internal/rbacstore.
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DashboardPermissions`, wired in only by `enterprise-api` — an Editor can
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now only edit/delete a dashboard they created or were granted access to,
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not every dashboard in their tenant; managing grants themselves is
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stricter still (creator/Admin/Owner only, closing a self-escalation
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path). Verified against a fake store (`api/dashboards/handler_test.go`);
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real integration tests exist but haven't run against a live Postgres,
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same disclosed gap as the rest of this phase's Postgres-backed pieces.
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What still keeps this phase from being done: ingest itself has no
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tenant concept for either storage engine (every record lands in the one
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shared ClickHouse database and Tantivy index no matter what —
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undesigned, not just unbuilt), and the two
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provisioning mechanisms (`deploy/operator`'s `Tenant` CRD and
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`enterprise-api -provision-tenant`) still aren't unified — running both
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for the same tenant ID is two separate operator actions today. Full
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accounting:
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`/docs/security/threat-model.md`; step-by-step verification procedure
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(not yet run against a live cluster in this environment):
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`/docs/phase-4-runbook.md`. The rest of this section describes the exit
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bar this phase is aiming at, not a completed state.
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Two tenants can be provisioned with SSO (OIDC or SAML), each with their
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own users, roles, dashboards, and alert rules, fully isolated at the
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ClickHouse/Tantivy connection layer — not by a row filter — with
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adversarial integration tests proving no cross-tenant data leakage,
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including via the raw-SQL escape hatch and ClickHouse's own `system.*`
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tables. A tenant admin can see a query audit trail for their tenant,
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backed by append-only storage a compromised application credential
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cannot alter (enforced by database grants, not just convention) and
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periodically anchored outside the database so tampering is detectable
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even against a privileged attacker. See `/docs/phase-4-isolation-design.md`
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for the tenant isolation model and why it lives at the connection layer,
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`/docs/phase-4-rbac-design.md` for the role/permission model, and
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`/docs/security/threat-model.md` for the auth flows and audit-log
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integrity guarantees, written for a prospective enterprise customer's
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security team.
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The tenant-isolation, provisioning, SSO, and RBAC-enforcement mechanisms
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live entirely in `enterprise/` (commercial license), confirmed
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explicitly rather than assumed: AGPL core (`/api`, `/alerting`, `/web`)
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stays genuinely single-tenant, with no multi-tenant mechanism present at
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all — `enterprise/` supplies tenant-scoped implementations of core's
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already-shipped `querylang/executor.SQLRunner`/`SearchClient` interfaces
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rather than core growing tenant awareness. Query-compiler-level "compile
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time" enforcement, as originally proposed, turned out not to be
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achievable in any module once Phase 2's opaque raw-SQL passthrough is
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accounted for — the honest, implemented guarantee is that every code
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path (compiled query or raw SQL) is forced through a tenant-scoped
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database connection/index that the database's own access control
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enforces, not a compiler-injected filter.
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Non-goals for this phase (same discipline as every phase so far):
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- No deny-override permissions — per-resource grants (e.g. a specific
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user getting edit access to one dashboard) are additive only; a full
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allow/deny ACL system is future work.
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- No data retention/deletion policy design for tenant deprovisioning —
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the provisioning state machine includes a `deprovisioning` state, but
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what actually happens to a deprovisioned tenant's data is a separate,
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not-yet-designed compliance question.
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- No general multi-cluster orchestration in `/deploy` — scoped to
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proving the per-tenant ClickHouse/Tantivy isolation model works, not a
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fully general multi-cluster system.
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- No protection against a privileged ClickHouse/Postgres administrator —
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the isolation and audit-log guarantees in this phase are structural
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defenses against application-layer bugs and injection, not against
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someone with database superuser access; that's an operational control,
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out of scope here and named explicitly, not silently assumed away.
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## When in doubt
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Ask before: changing the pinned stack, adding a new external dependency
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that pulls in a large transitive tree, or making an architectural decision
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that isn't already specified in `/docs/architecture.md`.
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