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debian-configuration/proxmox/docs/00-overview.md
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beatzaplentyandClaude Sonnet 4.6 2909db5d04 restructure: move proxmox/ into subfolder, add pihole/ section
All existing content moved from repo root into proxmox/ to make room
for other Debian machine configs. Adds pihole/ with:

- config/pihole.toml — snapshot of current Pi-hole v6 config
- config/dnsmasq.d/99-ipxe-chainload.conf — custom PXE DHCP rules
  (EFI/BIOS iPXE chainload, fixed tag-specificity bug for UEFI boot)
- pull-config.sh <source-host> <dest-dir> — pull live config to disk
- apply-config.sh <source-dir> <dest-host> — push config to a Pi-hole

Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01XRzqNDrbnYR22ZgZj1Bg3s
2026-07-23 12:16:35 +10:00

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5.6 KiB
Markdown

# Overview & Roadmap
## Staging
This repo now targets two distinct stages, in order:
- **Stage 1 (active)** — base configuration and hardening for a single
Proxmox host, applicable to *any* node regardless of eventual cluster
plans: repo/updates, SSH, firewall, PVE user/access hardening. This is
what `scripts/bootstrap.sh`, `scripts/audit.sh`, and
`04-security-hardening.md` cover, and what's being built out against
node 1 (`pve1`, an ASUS PN53 mini PC) right now.
- **Stage 2 (future)** — the multi-node HA/Ceph cluster described below
and in `01-hardware-node1.md` / `02-storage-zfs-ceph.md` /
`03-networking.md`. Deliberately deferred: `pve1`'s hardware (2 NVMe
already merged into one ZFS mirror used for both boot and VM storage, a
single 2.5GbE NIC) can't support the separate boot/Ceph disks or
bonded/segregated networking those docs assume. Revisit once dedicated
cluster hardware (nodes 2/3) is actually being bought and provisioned;
until then treat the content below as a target design, not a
description of `pve1`.
## Background
Old hardware required disabling KVM hardware virtualization for VMs to
start at all (falls back to software emulation — slow). This is a
host/BIOS-level issue, not a Proxmox limitation. Confirmed not present on
`pve1` (ASUS PN53, Ryzen 7 7735HS): AMD-V and IOMMU both show enabled at
boot (`dmesg | grep -i iommu`), no workaround needed. If this hardware line
is reused for nodes 2/3, this should hold there too, but re-verify per
node before assuming it.
## Stage 1: base config & hardening (active)
Applies to `pve1` now, and to every future node regardless of whether it
ever joins the Stage 2 cluster. Covered by `04-security-hardening.md` and
`scripts/bootstrap.sh` / `scripts/audit.sh`:
1. Fresh PVE install; confirm VT-x/AMD-V + IOMMU per the note above.
2. Switch off the enterprise repos, onto no-subscription
(`scripts/switch-to-no-subscription-repo.sh`).
3. SSH hardening: key-only root login + fail2ban
(`scripts/harden-ssh.sh`).
4. Unattended security upgrades, no auto-reboot
(`scripts/setup-unattended-upgrades.sh`).
5. PVE datacenter firewall, default-deny, mgmt-only SSH/8006
(`scripts/deploy-firewall.sh`).
6. Named PVE admin user (Administrator role) + 2FA, `root@pam` reserved
for emergencies (`scripts/create-admin-user.sh`, then manual TOTP
enrollment via the web UI).
7. Verify with `scripts/audit.sh`.
`pve1`'s actual disk/network layout (single ZFS mirror for boot + VMs, one
2.5GbE NIC) is documented as-is in `01-hardware-node1.md` — Stage 1 doesn't
require or assume the split-disk/multi-NIC layout Stage 2 wants.
## Stage 2: HA cluster + Ceph (future, deferred)
Everything below this point is the target design for when nodes 2 and 3
are actually being provisioned. Not applicable to `pve1` as it stands.
**`pve-test` existing does not mean node 2 exists.** A second physical
node (`pve-test`) does run alongside `pve1` — see `05-node-roles.md`
but it's a sandbox/test box, not built to this Stage 2 design, and as of
this writing runs on **wifi** networking
(`06-pve-test-wifi-network.md`), which is directly incompatible with
corosync's latency/jitter requirements below. `pve-test` and `pve1` were
briefly clustered and then deliberately de-clustered for exactly this
reason. Don't treat `pve-test` as progress toward Stage 2 without a
deliberate decision to rebuild its networking first.
### End goal
3-node Proxmox VE cluster with HA-managed VMs backed by **Ceph** — true
distributed shared storage, sync replication, near-zero RPO on failover
(see `02-storage-zfs-ceph.md`). Ceph needs 3+ nodes and a fast dedicated
network, so it can't exist until nodes 2 and 3 are up.
Deliberately no intermediate "ZFS + storage replication" HA step. Node 1
runs local ZFS for boot + VM storage with no cluster-wide HA until Ceph
goes live — as soon as nodes 2/3 join, VMs move onto Ceph rather than
adopting ZFS replication as a stopgap. Simpler end state, one storage
model to operate instead of two.
### Cluster fundamentals (apply from node 1 onward)
- 3 nodes minimum for real quorum. If starting with 2, add a QDevice
(small VM or Raspberry Pi) as tie-breaker.
- Dedicated network for corosync (cluster/quorum traffic) — never shared
with VM or storage traffic. Needs low, consistent latency (well under
5ms); jitter matters more than bandwidth.
- All nodes on the same PVE version, NTP-synced, SSH reachable between
nodes.
- Set VM CPU type to a portable type (e.g. `x86-64-v2-AES` or `kvm64`)
rather than `host` if nodes will ever have different CPUs — needed for
clean live migration.
### Rollout sequence (Stage 2, once dedicated cluster hardware exists)
1. Build node 1 per `01-hardware-node1.md`'s target design — fresh PVE
install on a dedicated ZFS boot mirror, Ceph-earmarked disks left idle
(or as a temporary local ZFS pool, to be wiped later — see
`02-storage-zfs-ceph.md`). Note: this assumes hardware with enough
disks/NICs to separate boot, Ceph, and network roles — `pve1` does not
have this and stays on Stage 1 only unless rebuilt on different
hardware.
2. Migrate VMs onto the new node via `vzdump` → copy backups →
`qmrestore` (converts disks to ZVOLs). No HA yet — single node.
3. Stage 1 base hardening already applied; layer on Stage 2 networking
(`03-networking.md`) before joining a cluster.
4. Add nodes 2 and 3 identically (same disk/network layout).
5. Join cluster, stand up dedicated corosync network.
6. Wipe the Ceph-earmarked disks (if used as temporary ZFS) and
initialize Ceph across all 3 nodes.
7. Migrate VMs from local ZFS onto Ceph-backed storage, then configure HA
groups.