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248 lines
12 KiB
Markdown
248 lines
12 KiB
Markdown
# elk_stack
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Deploys Elasticsearch, Logstash and Kibana as a single Docker Compose stack
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on a Debian host that already has Docker (and the `docker compose` plugin)
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installed and running. All three services join a shared bridge network
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(`elk-network` by default) so they can reach each other by container/service
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name — no hardcoded IPs, no `--link`.
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## Requirements
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- Debian host with Docker Engine + Docker Compose plugin already installed
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- Ansible collection: `community.docker` (`ansible-galaxy collection install community.docker`)
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- Python `docker` + `requests` modules on the target (the role installs these via pip)
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- Enough RAM for the JVM heaps you configure (Elasticsearch + Logstash default to ~1.5G combined; leave headroom for OS/Docker)
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## What it does
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1. Verifies Docker and Docker Compose are usable.
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2. Creates `{{ elk_base_dir }}` (default `/opt/elk`) with a `config/` tree.
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3. Templates:
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- `config/elasticsearch/elasticsearch.yml`
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- `config/kibana/kibana.yml`
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- `config/logstash/logstash.yml`, `pipelines.yml`, and three pipeline
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configs: `pipeline/main.conf` (generic beats/tcp/udp), `pipeline/pipeline-nginx.conf`
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(nginx access logs), `pipeline/pipeline-laravel.conf` (Laravel logs)
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- `docker-compose.yml` — one file, three services, one shared network, a named volume for ES data
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4. Brings the stack up with `docker compose up`.
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5. Waits for Elasticsearch to respond, then (if security is enabled) sets the
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`kibana_system` and `logstash_system` built-in user passwords via the
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Elasticsearch security API, and recreates Kibana/Logstash so they pick up
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working credentials.
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6. Waits for Kibana's `/api/status` to come back healthy.
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## Networking
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All three containers run on the `elk_network_name` bridge network
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(default `elk-network`, subnet `172.28.0.0/24`). Inside that network, all
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inter-service traffic uses `http://` or `https://` consistently based on
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`elk_tls_enabled` (default stack, TLS on):
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- Elasticsearch is reachable at `https://elasticsearch:9200`
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- Kibana is configured with `elasticsearch.hosts: ["https://elasticsearch:9200"]`
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- Logstash's pipelines all point at `https://elasticsearch:9200`
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With `elk_tls_enabled: false`, all three of the above use `http://` instead.
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Host ports (`elk_elasticsearch_http_port`, `elk_kibana_http_port`,
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`elk_logstash_beats_port`, `elk_logstash_nginx_beats_port`,
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`elk_logstash_laravel_beats_port`, etc.) are only for reaching the stack
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*from outside* — the containers themselves never use `localhost` to talk to
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each other.
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## Security
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`elk_security_enabled: true` by default (recommended). This turns on
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Elastic's built-in security (basic auth, no TLS between containers since
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traffic stays on the internal Docker network). Change these before running
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in anything but a scratch environment — ideally via Ansible Vault:
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```yaml
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elk_elastic_password: "..."
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elk_kibana_system_password: "..."
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elk_logstash_system_password: "..."
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elk_kibana_encryption_key: "..." # 32+ random chars, e.g. `openssl rand -hex 32`
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```
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Set `elk_security_enabled: false` for a quick, unauthenticated local/dev
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stack (no passwords) — do not do this on anything reachable from untrusted
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networks.
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**Note:** `elk_tls_enabled` and `elk_security_enabled` are independent
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switches you can set separately, but Elasticsearch only applies TLS
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(`xpack.security.http.ssl.*`) when X-Pack security itself is on. So if
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`elk_tls_enabled: true` and `elk_security_enabled: false`, this role
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force-enables security anyway purely to make TLS possible — `elastic`,
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`kibana_system`, and `logstash_system` all get real passwords from
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`elk_elastic_password`/`elk_kibana_system_password`/
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`elk_logstash_system_password` in that mode too, exactly as if
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`elk_security_enabled: true` had been set, so change those from their
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placeholder defaults the same way you would for a normal secured stack.
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Setting both `elk_tls_enabled: false` and `elk_security_enabled: false` is
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the only way to get a fully open, unauthenticated, plain-HTTP stack.
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## Example playbook
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```yaml
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- hosts: elk_servers
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become: true
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roles:
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- role: elk_stack
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vars:
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elk_version: "8.15.3"
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elk_elasticsearch_heap_size: "2g"
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elk_logstash_heap_size: "1g"
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elk_elastic_password: "{{ vault_elk_elastic_password }}"
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elk_kibana_system_password: "{{ vault_elk_kibana_password }}"
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elk_logstash_system_password: "{{ vault_elk_logstash_password }}"
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elk_kibana_encryption_key: "{{ vault_elk_kibana_enc_key }}"
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```
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## Customizing the Logstash pipeline
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Three pipelines run side by side inside the same Logstash process, each on
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its own beats port (they can't share a port):
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| Pipeline | Template | Beats port var | Purpose |
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| `main` | `main.conf.j2` | `elk_logstash_beats_port` (5044) | Generic beats input, plus raw JSON over TCP/UDP (5000) |
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| `nginx_pipeline` | `pipeline-nginx.conf.j2` | `elk_logstash_nginx_beats_port` (5045) | nginx access log parsing (grok + geoip) |
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| `laravel_pipeline` | `pipeline-laravel.conf.j2` | `elk_logstash_laravel_beats_port` (5046) | Laravel log ingestion |
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All three ship to Elasticsearch using the same `elk_tls_enabled`/
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`elk_security_enabled` logic as the rest of the stack (TLS scheme + the
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`logstash_system` credentials, when applicable). To add your own
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filters/inputs/outputs, either edit these templates directly, or drop an
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additional `*.conf.j2` file into `templates/` and extend `pipelines.yml.j2`
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(with a new `pipeline.id`/`path.config` entry and a beats port that doesn't
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collide with the ones above) and `tasks/main.yml` (a matching `template:`
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task) to deploy it.
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## Idempotency notes
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- Re-running the role only recreates containers whose config actually
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changed (via handlers), plus a compose reconciliation pass.
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- Setting the `kibana_system`/`logstash_system` passwords is safe to repeat;
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Elasticsearch just resets them to the same value each time and the role
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only recreates those two containers when the API call reports a change.
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## TLS (public certs for a private-IP node)
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`elk_tls_enabled: true` (default) gets Elasticsearch, Kibana, and Logstash a
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**real, publicly-trusted certificate** for a DNS name that happens to point
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at a private IP (e.g. `logs-eu.domain.com -> 10.0.99.5`), using the ACME
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**DNS-01** challenge against Cloudflare. This works even though the host
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itself is unreachable from the internet, because DNS-01 only requires the
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ability to create a `_acme-challenge` TXT record — no inbound HTTP/HTTPS
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access to the node is needed at all.
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### Why DNS-01, and why one shared cert
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- Public CAs don't issue certificates for bare IP SANs (especially not
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RFC1918/private addresses) — the workaround is a cert for a **DNS name**
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that resolves to the private IP, with clients connecting via that name.
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- Since all three services live on the same node behind the same DNS name,
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they share **one cert** rather than one per service. Elastic explicitly
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supports (and this is a common pattern) using [a single shared HTTP CA
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across Elasticsearch, Kibana, and other stack components](https://www.elastic.co/docs/deploy-manage/deploy/self-managed/tutorial-self-managed-secure)
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— separate CAs/certs per component exist to isolate trust domains, which
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isn't a goal here since everything is already inside the same trust
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boundary (one box, one operator, one Docker network).
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- Because the cert comes from a **public** CA (Let's Encrypt, via lego's
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default ACME server), Kibana and Logstash don't need a custom CA
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certificate distributed to them to trust Elasticsearch's cert — their
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default trust stores already trust Let's Encrypt's root. This removes an
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entire category of "distribute the CA cert everywhere" complexity that
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self-signed/internal-CA setups require.
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### What this role does
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1. Expects `elk_cloudflare_token_env_file` (default
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`/etc/lego/cloudflare-token.env`) to **already exist** on the box,
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containing `CF_DNS_API_TOKEN=...`, root-owned, mode `0600`. This role
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only *reads* that file — it never receives, logs, or stores the token
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itself. See "IaC responsibilities" below for where this file comes from.
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2. Installs the [`lego`](https://github.com/go-acme/lego) ACME client (a
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single static Go binary — no Python/snap dependencies, easy to pin an
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exact version).
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3. On first run, issues a certificate for `elk_tls_domain` via `lego ... run`,
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landing at `{{ elk_lego_certs_dir }}/{{ elk_tls_domain }}.{crt,key,issuer.crt}`.
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4. Mounts that directory read-only into all three containers and wires
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`xpack.security.http.ssl.*` (Elasticsearch), `server.ssl.*` (Kibana), and
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`ssl_enabled` (Logstash's elasticsearch output) to point at it.
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5. Installs a `lego-renew.service` + `lego-renew.timer` systemd pair that
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runs daily, checks expiry, and **only** re-issues (and only then restarts
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the three containers, via lego's `--run-hook`) when the cert is within
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`elk_tls_renew_days` of expiring. No-op checks never restart anything.
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### IaC responsibilities (Pulumi, not this role)
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This role deliberately does **not** manage Cloudflare DNS records, zones, or
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API tokens — that's Pulumi's job, since it already holds the Cloudflare
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credentials and provisions the box. The pseudocode below sketches what
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Pulumi needs to set up per node:
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```python
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# Pulumi pseudocode - see conversation history / infra repo for the real version
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apex_zone = cloudflare.get_zone(name="domain.com")
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# A record already exists in this setup: logs-eu.domain.com -> 10.0.99.x
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# (proxied=False - a private IP can't sit behind Cloudflare's proxy/edge)
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# Scoped API token: Zone.DNS.Edit, restricted to the apex zone's ID (or a
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# delegated child zone, e.g. logs-eu.domain.com as its own zone, for harder
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# isolation). This is the tightest scope Cloudflare's token model supports -
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# there's no way to restrict a token to a single record name/pattern.
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acme_dns_token = cloudflare.ApiToken(
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"logs-eu-acme-dns-token",
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policies=[{
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"permission_groups": [dns_edit_permission_group],
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"resources": {f"com.cloudflare.api.account.zone.{apex_zone.id}": "*"},
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}],
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# optional: condition.request_ip.in_ to pin the token to the node's
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# egress IP, and/or expires_on for periodic rotation via Pulumi re-runs
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)
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# Hand the token to the VM via cloud-init, written root-only - Pulumi never
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# passes this to Ansible as a variable.
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cloud_init_write_files = [{
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"path": "/etc/lego/cloudflare-token.env",
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"owner": "root:root",
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"permissions": "0600",
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"content": f"CF_DNS_API_TOKEN={acme_dns_token.value}\n",
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}]
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```
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For stronger isolation than a single shared zone token, NS-delegate
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`logs-eu.domain.com` (and `logs-us.domain.com`, etc.) to their own
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Cloudflare zones, and scope each region's token to only its own zone ID —
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that way a compromised `logs-eu` node's token can't touch `logs-us` or the
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apex domain's records at all.
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### Key variables
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| Variable | Purpose |
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| `elk_tls_enabled` | Master switch; `false` reverts to plain HTTP |
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| `elk_tls_domain` | The DNS name (e.g. `logs-eu.domain.com`) the cert covers and clients must connect via |
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| `elk_tls_acme_email` | Contact address registered with the ACME account |
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| `elk_tls_acme_server` | ACME endpoint — point at Let's Encrypt **staging** while testing to avoid production rate limits |
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| `elk_cloudflare_token_env_file` | Path to the pre-existing, cloud-init-provisioned token file |
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| `elk_tls_renew_days` | Renew when fewer than this many days remain before expiry |
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| `elk_lego_version` | Pinned lego release to install |
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### Operational notes
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- **Testing**: set `elk_tls_acme_server` to
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`https://acme-staging-v02.api.letsencrypt.org/directory` first — staging
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certs aren't publicly trusted but validate the whole DNS-01/Cloudflare
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flow without touching Let's Encrypt's production rate limits.
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- **Downtime on renewal**: renewal restarts all three containers via
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`docker compose restart`, which is brief (~10-20s) but not zero-downtime.
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Acceptable for a single-node stack; a zero-downtime rolling reload would
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require a multi-node Elasticsearch cluster, which is out of scope here.
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- **Clients must use the DNS name, not the raw IP** — connecting to
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`https://10.0.99.5:9200` directly will fail certificate hostname
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verification even though the cert is otherwise valid, since the cert's
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SAN is `logs-eu.domain.com`, not the IP.
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