255 lines
14 KiB
Markdown
255 lines
14 KiB
Markdown
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# OpenBao — the secret store, phase 1
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**Status: dormant.** Every file here is committed but nothing is cut over. SOPS is
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still authoritative for dev, beta and prod, because `TG_SECRETS_BACKEND` defaults to
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`sops` for all three in `infra/deploy/env-topology.sh`. Flipping an environment is a
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one-line reviewed change, and it should not happen until `verify-parity.sh` passes.
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Verified against **OpenBao v2.6.1** (2026-07-22). The binary is `bao`.
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---
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## Why do this at all
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Not for encryption, and not for audit — though the audit log is a real gain. The
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decisive reason is one specific failure class that a file-based vault cannot close.
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`infra/CLAUDE.md` states the rule: *"vps1 must never hold prod credentials. It's the
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box that runs Forgejo, its CI runner, and dev's unreviewed branch — the opposite of an
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isolation boundary."*
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Today that rule is enforced by a **shell flag** — `THERMOGRAPH_SECRETS_SKIP_COMMON=1`
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— set by the *caller*, at three separate call sites (`env-topology.sh:196` →
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`deploy.sh:67`, `deploy-dev.sh:86`, `infra-sync.yml:93-95`). The renderer itself does
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not know that `env=dev` means never-common. A fourth call site, or one by-hand
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`render_thermograph_secrets /opt/thermograph-dev/infra dev`, writes both S3 keypairs
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(one read-write on the bucket holding prod's database backups), the VAPID private key
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that signs Web Push to real subscribers, `REGISTRY_TOKEN`, and the IndexNow and metrics
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tokens onto the CI-runner box — **and exits 0**.
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Under `policies/tg-host-dev.hcl` that is not possible to get wrong. dev's identity
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cannot read `thermograph/data/common`. A misconfigured caller gets a 403 instead of a
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silent success. The failure class is *gone*, not guarded. That is what this migration
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buys, and it is worth the cost of running a stateful service.
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The estate has already hardened this once by hand (commit `7583258`, "infra-sync:
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refuse to render dev's vault onto a host that is not dev"). That is the shape of a
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problem that wants an ACL, not another guard.
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### What it does *not* buy — stated plainly
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- **Rotation of provider-issued credentials.** Roughly half the credential count is
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Discord, Contabo S3, the Forgejo registry token, VAPID, IndexNow. OpenBao cannot
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rotate any of them; they stay static KV entries. Contabo Object Storage is
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S3-compatible but exposes no IAM API, so the AWS secrets engine cannot issue against
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it either.
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- **Dynamic database credentials.** Inapplicable here for two independent reasons: the
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apps read `THERMOGRAPH_DATABASE_URL` once at import and hold a pool, so a TTL'd
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credential kills the pool at expiry; and there is no reload path anywhere in the
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codebase — no SIGHUP handler, no config re-read.
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- **Better review than git.** This is a real regression. Today a secret change is a
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PR with a diff, backstopped by `secrets-guard` CI. Under OpenBao it is an
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out-of-band API call with no diff and no review. Mitigated by committing a key-name
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manifest so CI can still assert no key vanished, plus the audit log and
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`bao kv metadata` as the change record — but not fully.
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- **Fewer moving parts.** SOPS needs no server. This adds a stateful service to keep
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alive, upgrade, back up and TLS-rotate, for ~40 secrets that change rarely.
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---
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## Shape of the deployment
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| Decision | Choice | Why |
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| Host | **vps2 only** | vps1 must never hold prod credentials, and with a static seal the box also holds the key that decrypts everything. Cost: vps1 needs vps2 up to deploy dev — acceptable, since when vps2 is down prod is down anyway. |
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| Process | **native systemd**, not a container | A Swarm service is circular (`deploy-stack.sh` renders secrets to deploy the stack). A plain `docker run` makes the vault depend on the daemon deploys restart, and is one `prune -a` from gone. Native = one dependency, the disk. |
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| Storage | **raft**, single node | 2.6.0 **deprecated the `file` backend** for removal in 2.7.0. Raft also has the only backup primitive (`operator raft snapshot save`). A *two*-node raft would be worse than one: quorum of two means losing either node loses writes. |
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| Seal | **static auto-unseal** | See below. |
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| TLS | self-signed, 10y, on disk | Must **not** come from Caddy/ACME — that would put DNS and the public internet in the boot chain of the secret store. |
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| Auth | AppRole per environment, CIDR-bound | 5-minute tokens; secret-ids that only work from the right mesh address. |
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| Consumption | keep rendering a dotenv file | Preserves every existing seam and keeps OpenBao a *deploy-time* dependency, never a runtime one. |
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### The unseal decision, which is the crux
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**Static seal**, key at `/etc/openbao/unseal.key` (0400), plus an off-box copy.
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Shamir (`-key-shares=5 -key-threshold=3`) means the vault is sealed after every process
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restart — reboot, package upgrade, OOM kill — and a human must type three shares.
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`render-secrets.sh` is on the deploy path for all three environments, so a sealed vault
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blocks every deploy and every hotfix. With one operator the N-of-M threshold is
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theatre: one person holds all the shares, so it buys nothing against the real threat
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while costing an availability property the estate has today for free. A Contabo reboot
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currently needs no human at all.
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OpenBao's docs hedge static seal — *"carefully evaluate"* — but that caveat is aimed at
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multi-tenant enterprises. The argument here is that **static seal is not a downgrade
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from the status quo**: `/etc/thermograph/age.key` is already one 0400 file per host
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that decrypts everything forever with no audit trail. A static seal key is the
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identical trust model. What changes is everything layered above it.
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**The one new single point of failure:** lose that key and the raft snapshots are
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unrestorable. It must exist in ≥2 places, one not on vps2. Hard operator obligation.
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A `transit` seal against a second OpenBao on vps1 is genuinely better — vps2's disk
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would no longer contain the unseal key — but the vps1 unsealer needs unsealing too, so
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the circularity moves rather than dissolves, and it adds "vps1 must be up before vps2's
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vault unseals" as a new failure mode. Revisit once the primary migration is boring.
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---
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## Layout
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```
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thermograph/data/common the 16 shared beta+prod values (= common.yaml)
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thermograph/data/env/prod prod's 16 (= prod.yaml)
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thermograph/data/env/beta beta's 8 (= beta.yaml)
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thermograph/data/env/dev dev's 12 — inherits NOTHING (= dev.yaml)
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thermograph/data/centralis/prod Centralis' 9 (= centralis.prod.yaml)
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thermograph/data/ops/backup S3 creds for ops-cron + the backup age recipient
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thermograph/data/legacy/age the age PRIVATE key — see "the age key survives"
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```
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Inheritance lives in the render order (`common` then `env/<name>`, last-wins);
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isolation lives in the policy. Today both live in one shell variable.
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`common` is a top-level path rather than `env/common` on purpose: it makes the dev deny
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rule expressible as exactly one path, with no wildcard over `env/*` able to
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accidentally re-include it.
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**~20 of the 61 keys are not secrets** (`PORT`, `WORKERS`, `APP_CPUS`, `TIMESCALEDB_TAG`,
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`THERMOGRAPH_BASE_URL`, the Discord channel IDs, the VAPID *public* key, …). They stay
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in the vault **for the cutover**, because byte-identical parity is the entire safety
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property and splitting them would destroy it. Moving pure config back into the repo is
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a clean follow-on that shrinks the vault-outage blast radius.
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---
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## The age key survives this migration
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**This is the trap that would cause silent data loss.**
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`ops-cron.yml:142` and `:197` stream every off-box Postgres and Forgejo dump through
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`pg_dump | age -r <recipient> | rclone rcat`, with 30-day S3 retention. Restore uses
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`/etc/thermograph/age.key`. So the age keypair is not just the SOPS transport — **it is
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the backup encryption key.**
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Deleting it along with the SOPS vault files would destroy up to 30 days of database
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recoverability, and nothing would notice until someone attempted a restore.
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So: keep the age private key at `thermograph/data/legacy/age` *and* in the password
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manager, and keep it on disk until either the newest age-encrypted object in S3 has
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aged out, or the backup path is re-pointed at a dedicated backup recipient. Retiring
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SOPS and retiring age are two different projects.
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---
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## Runbook
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### Stand it up (once, by the operator, on vps2)
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```sh
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sudo bash infra/openbao/bootstrap.sh # binary, TLS, seal key, unit, init
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# custody the recovery keys + /etc/openbao/unseal.key OFF the box, then:
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export BAO_ADDR=https://127.0.0.1:8200 BAO_CACERT=/etc/openbao/tls/bao.crt
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export BAO_TOKEN=<root token>
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sudo -E bash infra/openbao/bootstrap-policies.sh # mount, policies, approles
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bao token revoke -self
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```
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### Seed and prove (from your own machine — it needs your age key)
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```sh
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infra/openbao/seed-from-sops.sh --dry-run # key names + counts, writes nothing
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infra/openbao/seed-from-sops.sh --all
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infra/openbao/verify-parity.sh --all # MUST pass before any flip
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```
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`seed-from-sops.sh` reads every production secret in plaintext. Per `infra/CLAUDE.md`
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the equivalent `seed-from-live.sh` is explicitly *not for an agent to run*; this
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inherits that rule.
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### Cut an environment over
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One PR per hop, following the estate's own promotion model.
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```diff
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dev)
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- TG_SECRETS_BACKEND=sops
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+ TG_SECRETS_BACKEND=openbao
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```
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Order: **dev → beta → prod**, with `verify-parity.sh` green throughout. Recommended
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gate before prod: **7 consecutive green parity runs on all three environments**, run
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nightly from `ops-cron.yml` over SSH (which gives continuous evidence without granting
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CI any vault access).
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`TG_SECRETS_BACKEND=sops` remains a working two-way door for the whole period. Keep the
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SOPS path for a full release cycle after prod flips — it is the best mitigation
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available for anything unforeseen.
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### Rollback
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Revert the one-line PR and redeploy. The SOPS path is untouched by this work — verified
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by rendering dev (12 keys) and prod (32 keys) through it after the dispatch was added,
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matching the live hosts exactly.
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---
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## Failure modes
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| Failure | Effect | Mitigation |
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| Vault down/sealed at deploy | Render returns 1, deploy aborts, **running stack unaffected** — temp-then-install means `/etc/thermograph.env` is never truncated | `Restart=always` + static seal so a reboot self-heals; alert on `/v1/sys/health`; `TG_SECRETS_BACKEND=sops` is a working revert |
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| **Audit device wedges** | ⚠️ OpenBao **stops answering requests entirely** when no enabled audit device can record them — a full `/var` on vps2 blocks every deploy | Two devices (file + syslog); logrotate signals **SIGHUP** or bao writes to an unlinked inode; disk alert on vps2 |
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| Static seal key lost | Raft snapshots unrestorable | ≥2 copies, one off-box. The one new SPOF |
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| Raft corruption / disk loss | Total vault loss | Nightly `operator raft snapshot save`, age-encrypted to S3 beside the DB dumps. **Verify a restore end-to-end before any consumer depends on it** |
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| Cold boot of vps2 | Nothing needs the vault | Swarm restarts from persisted specs; `stack.env` / `thermograph.env` / `centralis.env` all persist. **This property exists because we render a file, and would be destroyed by app-native reads** |
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| Secret-id leak | Useless off the mesh | `secret_id_bound_cidrs`; revoke by accessor without knowing the value |
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| beta credential reaches prod | Cross-env compromise | Separate AppRoles, separate policies, secret-ids owned by the separate deploy users (`agent` vs `deploy`) — a boundary that does **not** exist today, since both currently reach the same root-owned age key. Honest limit: root on vps2 defeats it, exactly as it defeats the single age key now |
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| Upgrade to 2.7.0 | Removes the `file` backend and built-in cloud KMS seals | Already avoided by choosing raft + static. Pin the version |
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---
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## Deliberately out of scope
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For ~40 credentials and one operator the real risk is over-engineering. Not adopted:
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HA/multi-node raft, namespaces, dynamic database credentials, `bao agent`, cert auth,
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PKI, identity groups, transit seal (revisit later), OIDC for the operator.
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**OIDC for CI is out of scope for a reason worth recording.** Forgejo Actions *does*
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support OIDC — shipped in **Forgejo v15.0**, needing Runner > v12.5.0, enabled via
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`enable-openid-connect: true` rather than GitHub's `permissions: id-token: write`. But
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this estate runs `codeberg.org/forgejo/forgejo:9-rootless`
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(`infra/deploy/forgejo/docker-stack.yml:59`). That is a six-major-version upgrade, and
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coupling it to this migration would mean two large independent migrations at once with
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no way to tell which one broke. Revisit after Forgejo reaches v15; then
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`role_type=jwt` with `bound_claims` removes the last CI-side bearer credential.
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CI keeps its SSH keys and `REGISTRY_TOKEN` as Forgejo secrets. **CI gets no vault
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access at all** — the SSH-in architecture already means the *host* renders, never the
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runner, which is the least-privilege topology and should be preserved rather than
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"upgraded".
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### Secret zero, honestly
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Nothing eliminates it; you choose where it sits and how little of it there is. After
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this phase the chain terminates at **9 Forgejo Actions secrets + 1 static seal key + 4
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AppRole secret-ids**, versus today's **13 CI secrets + 1 omnipotent age key per host**.
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---
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## Verification gaps to close on the box
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Flagged rather than guessed, because these could not be checked from a workstation:
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1. Whether a raft snapshot is restorable under a *different* seal key. Docs don't say.
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**Test in phase 0, before anything depends on it.**
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2. Exact `-wrap-ttl` flag spelling on `bao write` — documented in the response-wrapping
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concept page but absent from the commands index. Check `bao write -h`.
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3. Debian/Ubuntu package repo URL. The install docs claim `.deb` packages exist but
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give no repository; `bootstrap.sh` uses the GitHub release tarball with checksum
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verification, which is fine and also fixes a standing weakness — `provision-secrets.sh`
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installs sops and age with a bare `sudo curl` and no verification at all.
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4. Vault-era naming persists inside OpenBao config (`vault { }` stanza,
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`X-Vault-Wrap-TTL` header). Expect it; don't "fix" it.
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