Mirrors the knoe-db commit `ff7546d` patches into the prole copy of `etc/init_kdc.sh` so a re-run of `install.sh --mode k3s --reset` from this repo produces a working cross-realm trust without manual cluster surgery. The k3s cluster is provisioned from this repo, so the source fix must live here (knoe-db remains canonical for GKE). Changes to etc/init_kdc.sh: 1. Create BOTH cross-realm krbtgts in MIT, not just the outbound one. The inbound `krbtgt/<REALM>@<TRUST_REALM>` (issued by Samba, decrypted here) was missing entirely; without it, MIT cannot decrypt inbound TGTs and the trust never carries traffic. 2. Pin both cross-realm krbtgts to RC4 (`arcfour-hmac:normal`). AES keys depend on salt, and Samba's `<remote_realm>+UPN` salt does not match MIT's `<local_realm>+<principal-no-realm>`; RC4 has no salt so both sides converge from the password alone. Matches the already-pinned Samba side (commit `ad1eced`). 3. Replace the broken "remote kadmin to Samba" reciprocal-trust block with a documented no-op pointing at `infrastructure/playbooks/kerberos_trust_setup.yml`. Samba AD does not accept additions over MIT's kadmin protocol; the block always failed with "Missing parameters in krb5.conf required for kadmin client". 4. Switch the KDC data volume from emptyDir to a PVC (claimName `knoe-kdc-data`, parameterized by `$PROLE_KDC_STORAGE_SIZE` and `$PROLE_KDC_STORAGE_CLASS`). State now survives pod restarts. Adds Junie brief `docs/plans/junie/kdc-trust-reset-repeatable.md` with four TDD acceptance criteria for an end-to-end --reset run on the prole k3s cluster. Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com> |
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| .idea/runConfigurations | ||
| archive/2026-04-cnpg-and-gitlab-cleanup | ||
| authority | ||
| conf | ||
| demo | ||
| deploy | ||
| docs | ||
| etc | ||
| gitea | ||
| img | ||
| infrastructure | ||
| k3s | ||
| k8s | ||
| knoe | ||
| knoe-db | ||
| mock_val | ||
| modes | ||
| monitoring | ||
| scan | ||
| scripts | ||
| src | ||
| supabase | ||
| tests | ||
| tools | ||
| .coveragerc | ||
| .gitignore | ||
| .gitlab-ci.yml | ||
| AGENTS.md | ||
| ansible_min.cfg | ||
| ansible.cfg | ||
| ansible.sh | ||
| BUILD.md | ||
| CLAUDE.md | ||
| config.py | ||
| config.sh | ||
| deploy.sh | ||
| env.sh | ||
| Executing | ||
| install.py | ||
| install.sh | ||
| knoe-db.iml | ||
| knoe.iml | ||
| knoe.sh | ||
| knoe.spec | ||
| LICENSE | ||
| Makefile | ||
| pom.xml | ||
| pyproject.toml | ||
| qodana.yaml | ||
| README.md | ||
| requirements-test.txt | ||
| requirements.txt | ||
| run_with_coverage.sh | ||
| status.py | ||
| supabase.sh | ||
| update.sh | ||
Knoe
Knoe makes it practical to run a Supabase-style platform across air-gapped, edge, and cloud environments.
It packages the core building blocks needed for a modern internal developer platform around PostgreSQL, object storage, secrets, auth, observability, and Kubernetes-native operations — with a bias toward simple deployment, shard-based scale-out, and deterministic ingestion.
Platform badges
What Knoe is
Knoe is an infrastructure stack for running a Supabase-like data and application platform across constrained, sovereign, and cloud environments, including:
- air-gapped networks
- edge and small-cluster deployments (K3s, K3d)
- Google Cloud Platform (GCP) deployments
- sovereign or private data environments
- disconnected labs and field systems
- internal platforms where cloud dependencies are undesirable
The design goal is not to mimic Supabase branding or every managed feature exactly.
The design goal is to provide the useful substrate people actually want:
- PostgreSQL as the center of gravity
- object storage
- auth integration
- secret management
- ingress and service exposure
- observability
- reproducible Kubernetes deployment
- application and worker services around the database
- ingestion patterns that are safe, resumable, and idempotent
Core idea
Knoe can run Supabase-style workloads in an air gap, on the edge, or in the cloud.
That means:
- PostgreSQL remains the system of record, managed as
knoe-dbwithin theknoe-systemnamespace - services are deployed on Kubernetes (K3d locally, K3s on-prem, GKE on GCP)
- auth can come from local identity systems or cloud OIDC where available
- object storage stays inside the environment
- secrets stay inside the environment
- ingestion does not depend on live internet services
- the stack can be deployed in shards for locality, resilience, and operational simplicity
Main components
Application layer
- Next.js app for the user-facing platform
- knoe-agent worker for async and background execution
Data layer
- knoe-db — CloudNativePG-managed PostgreSQL cluster in the
knoe-systemnamespace - PostgreSQL as the primary relational store
- append-only fact tables for durable ingestion and replay-friendly modeling
- PostgreSQL COPY for efficient bulk ingest
Deployed add-ons
- Supabase — self-hosted Supabase stack for auth, realtime, storage, and API gateway
- ArgoCD — GitOps continuous delivery for the
knoe-systemcluster - Gitea — lightweight self-hosted Git service
- GitLab — full-featured self-hosted DevOps platform
Storage and secrets
- Garage for S3-compatible object storage
- OpenBao for secret storage and secret distribution
Identity
- Dev auth: Samba AD + IdP
- Cloud auth: Google Workspace OIDC
Observability
- Vector for log and event shipping
- Prometheus / Grafana for metrics and dashboards
Platform operations
- K3d — local development clusters
- K3s — on-prem lightweight Kubernetes
- GCP / GKE — cloud-hosted cluster tier
- Helm
- ArgoCD
- Ansible
- OpenTofu
Ingestion model
Knoe is designed around deterministic, replayable ingestion.
Key patterns:
- SQLite delta cartridges as portable input units
- append-only fact tables for auditability and recovery
- PostgreSQL COPY for high-throughput loading
- queue-driven workers using
SKIP LOCKED - idempotent ingestion so retries are safe
- shard-based deployment so data movement stays deliberate and bounded
This makes the platform well suited to environments where data may arrive in batches, be transferred physically, or need careful replay and provenance.
Architecture at a glance
flowchart LR
subgraph Clients
U["Users / Operators"]
end
subgraph knoe-system ["knoe-system (Kubernetes)"]
A["Next.js App"]
W["knoe-agent worker"]
SB["Supabase\n(auth · realtime · storage · API)"]
ARGO["ArgoCD\n(GitOps)"]
GITEA["Gitea\n(Git)"]
GITLAB["GitLab\n(DevOps)"]
PG["knoe-db\n(CloudNativePG / PostgreSQL)"]
OBJ["Garage\n(Object Store)"]
SEC["OpenBao\n(Secrets)"]
OBS["Vector / Prometheus / Grafana\n(Observability)"]
ING["Traefik / Kong\n(Ingress)"]
end
subgraph Infra ["Infrastructure"]
K3D["K3d\n(local dev)"]
K3S["K3s\n(on-prem)"]
GCP["GCP / GKE\n(cloud)"]
end
subgraph Identity
AUTH["Samba AD / Google Workspace OIDC"]
end
U --> ING
ING --> A
ING --> SB
ING --> ARGO
ING --> GITEA
ING --> GITLAB
A --> PG
A --> OBJ
A --> SEC
A --> AUTH
W --> PG
W --> OBJ
W --> SEC
SB --> PG
SB --> OBJ
SB --> AUTH
ARGO --> A
ARGO --> W
ARGO --> SB
ARGO --> PG
ARGO --> OBJ
ARGO --> SEC
GITEA --> ARGO
GITLAB --> ARGO
K3D & K3S & GCP --> |hosts| knoe-system
OBS -.-> PG
OBS -.-> A
OBS -.-> W
Deployment model
Knoe favors simple, understandable deployment over excessive platform ceremony.
Typical characteristics:
- Kubernetes-native deployment across K3d (local), K3s (on-prem), and GCP (cloud)
- lightweight K3s/K3d-friendly footprint
- HA where it matters
- shard-oriented layout instead of one giant control surface
- GitOps-driven operations via ArgoCD, backed by Gitea or GitLab
- support for small clusters, including Pi-based or edge environments
Use cases
Knoe is a good fit for teams that need:
- a PostgreSQL-centered application stack inside a disconnected or sovereign environment
- a self-hosted substrate for Supabase-style internal platforms
- ingestion from offline or intermittently connected sources
- reproducible deployment on small Kubernetes clusters (K3s/K3d) or GCP
- strong control over secrets, storage, and identity boundaries
- a full GitOps workflow with ArgoCD, Gitea, and GitLab
Project principles
- Air-gap first
- Postgres first
- Simple over ornate
- Deterministic ingestion
- Kubernetes-native
- Shard-friendly
- Operationally boring where possible
Repository scope
This repository contains the infrastructure and platform materials used to stand up Knoe components, including Kubernetes deployment, database operations (knoe-db in knoe-system), storage, auth, observability, and supporting services.
As the project evolves, this README should stay focused on:
- what Knoe is
- why it exists
- the major building blocks
- the deployment model
- the operational philosophy
Detailed setup docs, cluster procedures, and host-specific notes should live in dedicated documents under docs/, ops/, k8s/, or role-specific subdirectories rather than expanding this file indefinitely.
Status
Knoe is an actively evolving platform stack aimed at practical self-hosted, edge, and cloud operation.
Expect the architecture to continue being refined toward:
- cleaner bootstrapping
- better shard isolation
- smoother rejoin/reset behavior for cluster nodes
- clearer service boundaries
- improved onboarding and operations documentation
License
Add the project license here.