Assistant: codex Assistant-Model: gpt-5.6-sol Assistant-Session: 01a0260c-4067-7052-9647-ad000d576e38
10 KiB
| id | type | title | domain | repo | status | owner | topic_slug | created | updated |
|---|---|---|---|---|---|---|---|---|---|
| WHITEHAT-WP-0001 | workplan | Produce the adversarial evidence the Tenancy Posture ladders require | infotech | whitehat-security | active | net-kingdom | whitehat-security | 2026-08-17 | 2026-08-21 |
WHITEHAT-WP-0001 — cross-tenant evidence
Goal
Produce, on a schedule, the adversarial evidence artifacts that NetKingdom's Tenancy Posture standard requires and no repo can honestly produce about itself — starting with the one the framework calls its highest-severity gap.
Done means: a service claiming E2 has been attacked as an adversary holding
its runtime credential, the attempt is recorded with a date and an attacker
model, and a failure routes to risk-nexus rather than to a log nobody reads.
The forcing case
Tenancy Posture open question 3 has been unowned since the framework was drafted. What it calls a tenant-boundary failure the security industry calls Broken Object Level Authorization — OWASP API1, top of the API Security Top 10 since that list launched, and the most commonly exploited API vulnerability in published assessments.
The estate has no coverage for it. rapp-postgres runs fifteen adversarial
probes and every one targets the consumer boundary — service versus service.
None targets the tenant boundary inside a consumer, which is where the
framework says the residual risk actually lives.
Rules of engagement — T01, and nothing else starts first
An automated facility that probes systems without written scope is indistinguishable from the threat it models. This is the gating task and it is not paperwork.
- Target authorization, the control that matters most now the facility is scoped to any surface we choose rather than only our own. No target without a recorded authorization from its responsible party. Our estate in build mode has standing authorization only as a prerequisite: every live run still needs the dated engagement record and target-owner acknowledgement defined in the rules of engagement. Production needs its own authorization; anything we do not own needs written per-engagement authorization recorded here before a packet is sent. A commercial relationship, public reachability, and "they would obviously be fine with it" are each explicitly not authorization.
- Scope. Which systems, which namespaces, which credentials — and a hard stop at the engagement boundary. A probe that discovers an adjacent system reports what it saw and does not follow it.
- Prohibited actions, stated as hard rules rather than intentions: no destructive operations against data the estate did not create for the test; no exfiltration of real tenant data even as proof of a finding — a count and a schema shape are proof enough; no denial-of-service against a shared substrate outside a declared window, because the connection ceiling means a saturation probe is an outage for every co-resident.
- Credentials. The facility holds leased credentials like any workload,
through the sanctioned OpenBao lane. It gets no standing privilege, and
notably no
BYPASSRLSand no superuser — an attacker would not have them and a probe holding them proves nothing. - Attribution. Every probe connection is identifiable as a probe in
pg_stat_activityand in logs, so an operator investigating an anomaly can tell us from a real adversary in seconds. - Abort. How a run is stopped, by whom, and what state it leaves behind.
Output: docs/rules-of-engagement.md, reviewed by the operator personally.
This is exactly the class of thing risk-nexus's escalation duty exists for.
Tasks
T01 — Rules of engagement
As above. Gates everything.
id: WHITEHAT-WP-0001-T01
status: progress
priority: high
Drafted in docs/rules-of-engagement.md on 2026-08-18 with authorization
classes, per-run records, initial target envelope, hard prohibitions,
credential/attribution rules, rate defaults, abort/cleanup and evidence
schema. It authorizes no live traffic until the operator personally approves
§10. T01 remains progress and continues to gate every later task.
T02 — The attacker model per axis
id: WHITEHAT-WP-0001-T02
status: wait
priority: high
What the adversary is assumed to hold, so a probe is judged against a threat rather than against taste. Drawn from Tenancy Posture §4.3, which already distinguishes them:
| Axis | Adversary holds | Probe answers |
|---|---|---|
| E1/E2 | A legitimate runtime credential and the ability to make ordinary requests as tenant A | Can it reach tenant B's rows? |
| E3 | The above, plus SQL execution on the connection | Can it re-SET the tenant GUC and read across? |
| E4 | A leaked per-tenant credential | Can it address another tenant's substrate at all? |
| P1/P2 | A co-resident consumer behaving badly within its own allowance | What degradation do neighbours experience? |
| R | A copy of a backup taken before an erasure | Is the erased data still readable? |
Output: docs/attacker-model.md. Note that the E3 row exists because the
framework corrected itself: E3 stops accident, not compromise, and a probe that
only tested accident would report a strength E3 does not have.
T03 — Differential cross-tenant harness (the E2 artifact)
id: WHITEHAT-WP-0001-T03
status: wait
priority: high
The core technique: run the same request as two tenants and compare.
- Provision two disposable tenants against a target service.
- Exercise its surface as tenant A; attempt every object identifier observed from tenant B's context.
- Assert: B receives a denial or an empty result. A well-formed 200 containing A's data is the finding, and the harness must be built to notice that rather than to notice errors — both of this estate's real regressions produced ordinary-looking responses, a 403 and a 404, and nothing alerted.
- Capture evidence as a count and a schema shape, never as tenant data (T01).
Acceptance: run against tenant-engine and audit-core, both of which
currently claim E2. The artifact is the run record, not a green tick.
T04 — Prove the probes fail
id: WHITEHAT-WP-0001-T04
status: wait
priority: high
A probe that has only ever passed is not evidence.
Build known-bad fixtures — a service with a deliberately missing tenant
predicate — and confirm each probe fails against them. rapp-postgres verified
its drift check this way, by re-pinning to a bad digest and confirming exit 1;
the same discipline applies here and is not optional.
Acceptance: every probe in T03 demonstrated failing before any of them is trusted passing.
T05 — RLS conformance under attack (the E3 artifact)
id: WHITEHAT-WP-0001-T05
status: wait
priority: medium
rapp-postgres ADR-0003 supplies an rls_conformance view and a template, and
states plainly that the platform's guarantee is detection, not prevention —
a table created by a later migration ships without a policy until something
notices. This repo is that something.
- Query the conformance view on a cadence; any row is a finding.
- Attack what the view cannot see: a session that sets no GUC must read nothing; a session with another tenant's value must see nothing; an insert attributed to another tenant must be refused.
- Attempt the documented bypasses: a
SECURITY DEFINERfunction owned by the table owner, and a role holdingBYPASSRLS.
Cadence is the deliverable here, not a detail. For a detection-based control the interval between runs is the exposure window, and ADR-0003 leaves the number to this repo. Set it, and state the resulting window in the record.
T06 — Noisy-neighbour characterisation (the P1/P2 artifact)
id: WHITEHAT-WP-0001-T06
status: wait
priority: medium
The framework had to reword this artifact once already: its first draft required proof that a saturating consumer "does not breach" another's allowance, which shared infrastructure cannot provide.
What is achievable and therefore what this produces: a recorded baseline of per-consumer resource usage; a run in which one consumer saturates its declared allowance; evidence that the governance controls bind; and the degradation co-residents experience, measured and written down rather than asserted acceptable.
Runs inside a declared window per T01 — on a single-node rail with a six- consumer connection ceiling, a saturation probe is an outage if run carelessly.
T07 — Reporting into risk-nexus
id: WHITEHAT-WP-0001-T07
status: wait
priority: medium
Findings leave this repo in one direction. A run produces: what was attempted,
under which attacker model, when, against which posture claim, and the outcome.
It carries no severity — that is risk-nexus's.
A passing run is also reported. "The attacks we thought of did not work" is the honest claim, and recording it dated is what lets anyone see how stale the assurance has become.
Sequencing
T01 gates all. T02 shapes T03/T05/T06. T04 gates trusting any of them. T07 can follow T03.
Risks
The facility becomes the threat. Mitigated by T01, and by holding no standing privilege.
Probes weaken silently. A probe that starts passing after a change to itself rather than to the system is a finding, not a fix. Probe changes are reviewed as security changes.
Green is mistaken for safe. Every report states that a pass means the attacks attempted did not work, not that the boundary holds.
It drifts into fixing things. The boundary in INTENT is load-bearing: findings route out, work does not come in.
Open questions
- Owner: NetKingdom — settled 2026-08-17. Offensive security is security
work. The residual tension (NetKingdom owning both the Tenancy Posture
framework and the facility that tests conformance to it) is mitigated by
findings routing out to
risk-nexusunder separate ownership, and is recorded in INTENT rather than argued away. - Where probes run from. In-cluster gives realistic network position; outside gives independence from the substrate under test. Probably both, eventually; pick one to start.
- Does a service get told it is being probed? Announced runs are easier to operate; unannounced ones test the alerting too. Build mode probably announced, production probably not — which is itself a T01 decision.