# Sentry 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 second time.** This section originally read "log data queried through `POST /query` is not tenant-isolated at all," then "ClickHouse is isolated but Tantivy isn't." Both ClickHouse *and* Tantivy connection/index-layer isolation are now built. What's left is narrower but still real: **whether a given deployment actually runs the isolated binary**, and **whether ingest itself is tenant-aware** (it isn't, for either storage engine). **ClickHouse (the SQL path) is built.** `enterprise/internal/ tenantprovision` (real `CREATE DATABASE`/`CREATE USER`/`GRANT`) 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`. **Not yet confirmed against a real ClickHouse** — this environment had no Docker/database access while these were written; the tests exist and are correct Go, but "the test exists" is not the same claim as "isolation is confirmed" (see `/docs/phase-4-runbook.md`). **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/sentry/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 `sentry-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) — 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 is not tenant-aware for either storage engine**, and this is more load-bearing than it sounds: `chrunner`/`searchclient` prove *read* isolation given tenant-scoped data exists, but nothing writes tenant-scoped data yet. Every record `ingest` produces lands in the one shared ClickHouse database and the one shared (default) Tantivy index, regardless of tenant. A newly-provisioned tenant's ClickHouse database and Tantivy index are real, isolated, and queryable through `enterprise-api` — and permanently empty, until ingest itself becomes tenant-aware, which is undesigned, not just unbuilt. ## 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) sentryctl ──▶ api, alerting (Bearer token when SENTRYCTL_TOKEN is set) ``` Ingest path (agent → Redpanda → ingest → ClickHouse, and Redpanda → search → Tantivy) carries no tenant concept at all yet either — every ingested log record lands in the one shared `logs` table/index. Tenant isolation for *ingest*, not just query, is out of scope for what's built so far and is 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/` (commercial license: SSO, RBAC storage, audit logging, session issuance) is never imported by AGPL core (`/api`, `/alerting`, `/web`, `/cli`) — enforced in CI by `hack/check-tenant-boundary.sh`, which greps for the import edge on every build. 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 a not-yet-served URL instead, backed by two new 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. This is the *backend protocol* for tenant selection, verified with the same real-fake-IdP tests as the rest of `internal/loginhandler` — the frontend page that would call it doesn't exist (`web` has no session/cookie-handling code at all today, and `enterprise-auth` has no CORS middleware for a cross-origin `fetch` with credentials to work), both real, separately-scoped gaps, not silently approximated. `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; only the HTTP endpoints do). **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": 1. A dedicated `audit_writer` Postgres role with only `INSERT`+`SELECT` grants (`metadata/migrations/0012-0014`), via its **own** `pgxpool.Pool` — never the shared `sentry` role/pool every other store uses. 2. A `BEFORE UPDATE OR DELETE ... RAISE EXCEPTION` trigger (`metadata/migrations/0015-0016`) that rejects the operation for *any* role, including the table owner — confirmed live: even the `sentry` role cannot `UPDATE` a 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 `/CLAUDE.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_log` metadata leakage — per-tenant users are now real, but the check itself hasn't run yet.** Was an open verification item because there were no per-tenant ClickHouse users to check against; that blocker is gone (`enterprise/internal/tenantprovision` exists), and `tenantprovision_test.go`'s `TestProvisionedUserCannotReadSystemTables` asserts exactly what the design calls for (`system.query_log`/`system.tables` inaccessible, `SHOW DATABASES` not revealing other tenants) — but this environment never had ClickHouse access to actually run it, so it remains unconfirmed against the pinned version (`clickhouse/clickhouse-server:24.8`) until someone with Docker access runs it (`/docs/phase-4-runbook.md` §8). Also still contingent on the deployment-shape caveat at the top of this document: even once confirmed, this only holds when `enterprise-api` (not plain `api`) is actually serving traffic. - **No deny-override grants** — `dashboard_permissions` is 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.status` state machine includes `deprovisioning`, 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, and was never applied to a live cluster in this environment (see that README's verification section). ## Deployment/network assumptions - `enterprise-auth`'s `/internal/authorize` and `/auth/features` endpoints 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/sentry`. - `ENTERPRISE_SESSION_SIGNING_KEY`, ClickHouse/Postgres passwords, and (once minted) the `alerting` service token are all K8s `Secret` objects in the Helm chart (`/deploy/helm/sentry/templates/ secrets.yaml`) — standard K8s `Secret` semantics apply (base64, not encrypted at rest without a cluster-level `EncryptionConfiguration`). 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`) | **Built, not live-verified** — real integration test exists, not yet run against ClickHouse | | ClickHouse query routing (`chrunner`) | **Built, not live-verified** — and only applies when `enterprise-api` serves traffic, not plain `api` | | `system.*` ClickHouse metadata isolation | **Built, not live-verified** — same caveat as above | | 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-awareness (ClickHouse and Tantivy both) | **Not implemented, undesigned** — every ingested record lands in the single shared database/index regardless of tenant | | Deployment actually routing traffic to `enterprise-api` (Helm) | **Enforced** — `api`/`enterprise-api` are mutually exclusive, same flag as RBAC/audit/SSO | | Deployment actually routing traffic to `enterprise-api` (docker-compose) | **Enforced** — `api`/`enterprise-api` are mutually exclusive via `COMPOSE_PROFILES`, same flag choice as Helm's `enterprise.enabled`; verified via `docker compose config`, not an actual `docker compose up` in this environment | | Human SSO login — OIDC | **Built, verified with a real fake IdP** (not yet tried against a real external IdP) | | Human SSO login — SAML | **Built, verified with a real fake IdP** (not yet tried against a real external IdP) | | Multi-tenant-membership login (tenant picker) | **Backend protocol built and verified** (`GET /auth/memberships`, `POST /auth/select-tenant`, a pending-login token distinct from a real session) — no frontend page calls it yet | | Per-resource dashboard grants (`own/granted`) | **Built, unit-tested against a fake store; live-Postgres integration tests written, not run in this environment** (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** |