Move manifests/multus/reserved/browser-vpn-proxy.yaml into the active multus tree (sync-wave 3) now that qBittorrent and JDownloader have both independently passed their canary, validation, and soak gates - the precondition this file's own header already called for. Add EXPECTED_VLAN50_IP/NET_RAW to its guard init container, matching the fix qBittorrent/JDownloader/canary all needed for the arping-based checks to run. Deliberately no auth (REQUIRE_AUTH=false) and no ALLOWED_IPS, after discussion: access restriction relies on the home network's own firewall (Trusted/Lab -> Lab NodePort ALLOW, other VLANs DENY except Technitium DNS), not an app-level control. Along the way, found and avoided shipping a real bug in the original draft - go-socks5-proxy's ALLOWED_IPS parses values with net.ParseIP (not CIDR-aware) and matches with exact net.IP.Equal(), so the drafted "10.10.40.0/24" value would have produced a nil whitelist entry that matches no real client, rejecting every connection. This library has no way to express a subnet allowlist at all - removed rather than left silently broken. Also drops the now-unneeded browser-vpn-proxy-credentials Secret and its companion script/README references. Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com>
Multus + VLAN 50 NAD + canary
Implements plan.md Phase 4/5. Reconciled by argocd/apps/multus.yaml,
which is deliberately manual-sync only — see that file's header
comment. Nothing here applies to the cluster just because it's merged to
main.
Files (sync-wave order)
| File | Wave | What |
|---|---|---|
00-crd.yaml |
-1 | NetworkAttachmentDefinition CRD |
01-rbac.yaml |
0 | Multus ServiceAccount/ClusterRole/ClusterRoleBinding |
02-daemonset.yaml |
0 | Multus thick-plugin DaemonSet — nodeSelector restricted to nik-debian only, k3s-specific CNI paths |
10-nad-vlan50.yaml |
1 | VLAN 50 NetworkAttachmentDefinition, macvlan bridge on enp1s0.50, static IPAM |
vlan50-egress-guard-script.yaml |
(no wave annotation — apply alongside 10) | Shared init-container script consumed by the canary and, later, qBittorrent/JDownloader |
20-canary.yaml |
2 | Temporary canary pod — do not sync without separate explicit approval, see its own header |
reserved/browser-vpn-proxy.yaml |
n/a | The .12 third workload, prepared not deployed — see its own header for why it lives in a subdirectory argocd/apps/multus.yaml never scans at all |
Before applying anything here
- Ansible Phases 2/3 (
ansible/roles/pia-gateway,ansible/roles/ vlan50-parent) must already be live and verified — the NAD'smaster: enp1s0.50and the whole VLAN 50 return path depend on both. - Verify the Multus DaemonSet manifest (
02-daemonset.yaml) against the currentk8snetworkplumbingwg/multus-cnideployments/multus- daemonset-thick.yml— see that file's own header comment for exactly what's unverified (image tag, daemon flags) versus live-confirmed (the k3s CNI paths). - Sync order matters even within this one manual-sync Application: 00 →
01 → 02, confirm the Multus pod is actually Running on
nik-debianand/var/lib/rancher/k3s/agent/etc/cni/net.dnow has a generated00-multus.conf, then 10, then — only with separate approval — 20.
Canary lifecycle — re-running it after a Multus/CNI change
A canary that already reached Failed will never rerun on its own, and
an Argo "Synced" status does not mean it passed. 20-canary.yaml sets
restartPolicy: Never and has a fixed name (vlan50-canary, no owning
Deployment/Job/controller) — deliberately, so nothing ever recreates it
automatically (see "Should this become a Deployment/Job instead?" below
for why that's load-bearing, not incidental). Two consequences that have
each caused real confusion live (2026-08-24), diagnosed from cluster
evidence rather than assumed:
- Once the Pod object reaches
phase: Failed, it stays exactly as it is forever — Kubernetes does not retry arestartPolicy: NeverPod, full stop. Fixing the underlying Multus/CNI DaemonSet does not make this Pod try again; it is inert. The only way to get a fresh attempt is to delete and recreate the Pod object itself (new UID, new sandbox, new CNI ADD from scratch). - Argo reporting
multusasSyncedonly means the live Pod manifest matches what's in Git — for a bare Pod (not a Deployment), that comparison is satisfied by the existing (possibly long-Failed) Pod object as-is. Argo has no reason to touch it, so "Synced" here proves nothing about whether the canary actually ran successfully, or even about when it last ran. Don't read Synced as "passing."
A real example of what this produces if missed: after a DaemonSet fix
lands and rolls out, the node briefly passes through an inconsistent
state (old Multus daemon torn down, new one's init containers still
installing plugins, new daemon not started yet — a few seconds to low
tens of seconds depending on image pull/init time). A FailedCreatePodSandBox
retry loop that happens to land its next attempt inside that exact
window can produce a Pod that looks alive (sandbox created, init
container starts, primary eth0 interface up) but whose secondary
net1 attach never actually completed — no AddedInterface event for
it, no k8s.v1.cni.cncf.io/network-status annotation, the guard script's
own net1 wait times out. That Pod is now permanently Failed and
permanently stale evidence about the current DaemonSet state — its logs
and events describe a multus-daemon instance that may no longer exist.
Treating that as proof of a live code defect (rather than recreating the
Pod first) risks chasing a bug that was already fixed.
After any change to 02-daemonset.yaml, 10-nad-vlan50.yaml, or the
node's CNI binaries, the only trustworthy re-test is:
- Wait for the DaemonSet rollout to actually finish and be Ready —
kubectl -n kube-system rollout status daemonset/kube-multus-ds. - Delete the old (Failed) canary Pod —
kubectl -n downloads delete pod vlan50-canary(or via the Argo UI). - Recreate it fresh —
kubectl apply -f manifests/multus/20-canary.yaml(or a selective Argo sync of just that resource). - Record the new Pod UID (
kubectl -n downloads get pod vlan50-canary -o jsonpath='{.metadata.uid}') and evaluate only logs/events tied to that UID going forward — old aggregated events for the previous UID are not evidence about this attempt.
Should this become a Deployment/Job instead, so it retries itself?
Deliberately not, at least not while ipam.type: static has no
allocator behind it (see above) and this canary is hardcoded to
10.10.50.100. A controller that recreates the Pod automatically (a
Job, a Deployment with replicas: 1) would retry through exactly the
kind of transient window described above without a human confirming
the previous attempt's netns was actually torn down cleanly first — two
overlapping attempts (a slow-terminating old Pod and a freshly-started
new one) both claiming .100 on the same L2 segment is precisely the
duplicate-address scenario the guard script's arping -D check now
exists to catch, not something to engineer back in via unattended
retries. Keeping this a manually recreated, controller-less Pod means
recreation only ever happens when someone is actually watching the
outcome — that property is worth more here than convenience. If this
changes (e.g. a real per-IP allocator is introduced later), revisit.
The managed switch accepts multiple source MAC addresses on nik-debian's port (confirmed in the session that authored this plan — see the coordination handoff in the final report of that session). macvlan bridge is plan.md's stated preference whenever that's true, and is simpler than ipvlan L2 (each attached pod gets its own real MAC, no L2 address-sharing edge cases).
Why ipam.type: static and no shared allocator (Whereabouts etc.)
Only ever a handful of fixed IPs on this network — qBittorrent (.10),
JDownloader (.11), one reserved-not-deployed (.12), and a single
canary (.100). A dynamic IPAM controller (CRD, webhook, its own failure
modes) is unjustified complexity for that; each pod's own
k8s.v1.cni.cncf.io/networks annotation just states its IP directly.
Rollback
Deleting the Kubernetes-side resources alone is not safe and can break
all new pod scheduling on nik-debian — not just Multus-attached pods.
An earlier version of this doc claimed leaving the generated
00-multus.conf in place was harmless once Multus was gone; that's
wrong. Multus's "auto" config mode does not replace or rename the
original Flannel CNI conf file — it adds 00-multus.conf alongside it,
which sorts first and wins by kubelet's own file-ordering convention.
kubectl deleteing the DaemonSet removes the running daemon and its pod,
but does not remove that generated conf file or the multus shim
binary the init container copied onto the host — both are host
filesystem side effects kubectl delete has no reach into. If
00-multus.conf is left behind after the daemon it depends on is gone,
containerd/kubelet will try to invoke a CNI plugin that's no longer
there for every new pod sandbox on that node, Multus-attached or not
— the node effectively stops being able to start any new pod until that
file is dealt with.
Correct order — host-side cleanup on nik-debian before the Kubernetes side:
# 1. On nik-debian (needs root — not reachable via kubectl):
ssh -p 430 nik@10.10.40.20
sudo ls /var/lib/rancher/k3s/agent/etc/cni/net.d/
# Confirm both files are present: 00-multus.conf (generated) and the
# original Flannel conf (something like 10-flannel.conflist — the
# exact name wasn't captured during discovery; read whatever's there).
sudo cp /var/lib/rancher/k3s/agent/etc/cni/net.d/00-multus.conf \
/root/00-multus.conf.removed-$(date +%Y%m%d%H%M%S) # capture for diagnosis first
sudo rm /var/lib/rancher/k3s/agent/etc/cni/net.d/00-multus.conf
# Optional cleanup, not required for correctness once the conf file
# above is gone — the multus shim binary itself, if you want it off
# the host too:
sudo rm -f /var/lib/rancher/k3s/data/cni/multus-shim # confirm the actual filename first; do not guess-delete
# 2. Prove an ordinary pod can still be newly scheduled on nik-debian
# before touching anything else (from your workstation):
kubectl run vlan50-rollback-probe --image=busybox:1.36 --restart=Never \
--overrides='{"spec":{"nodeSelector":{"kubernetes.io/hostname":"nik-debian"}}}' \
-- sleep 60
kubectl wait --for=condition=Ready pod/vlan50-rollback-probe --timeout=60s
kubectl delete pod vlan50-rollback-probe
# 3. Only now, the Kubernetes-side resources, in this order:
kubectl delete -f manifests/multus/20-canary.yaml # if it was ever applied
kubectl delete -f manifests/multus/10-nad-vlan50.yaml # only after no pod still references it
kubectl delete -f manifests/multus/vlan50-egress-guard-script.yaml
kubectl delete -f manifests/multus/02-daemonset.yaml
kubectl delete -f manifests/multus/01-rbac.yaml
kubectl delete -f manifests/multus/00-crd.yaml # only after no NAD remains
None of this has been exercised against the live cluster — step 2's probe pod is exactly how to prove it actually worked before considering the rollback complete, not an optional extra.