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Olly Observability Agent Skill
Use this skill to interact with Coralogix's Observability Agent (Olly) via the cx olly CLI commands. Olly can analyze your observability data, answer questions about alerts, metrics, logs, and generate artifacts like charts and reports.
cx olly ask defaults --agent-to-agent-mode to false. If you're an LLM/agent, pass `--agent-to-agent-mode` - see "Agent-to-agent mode" below.
CLI Commands
| Command | Purpose | Key flags |
|---|---|---|
cx olly ask "message" | Send a message to the Observability Agent | --chat-id, --model, --timeout, --agent-to-agent-mode |
cx olly artifacts list | List all generated artifacts | - |
cx olly artifacts get <id> | Get artifact content by ID | - |
Output format: append -o json or -o toon for machine-readable output.
Single-profile only: cx olly commands do not support multi-profile fan-out. Use -p <profile> to specify a single profile.
Running Olly (async by default)
Run `cx olly ask` asynchronously by default: launch it as a background process and poll it for completion rather than blocking on it. Olly investigations routinely take minutes, so this is the normal mode for cx olly ask.
Only run cx olly ask inline (foreground, blocking) for a short question you expect Olly to answer quickly — a quick lookup or a one-line follow-up. When in doubt, run it in the background.
Chat Commands
Start a new conversation
cx olly ask "What alerts fired today?" --agent-to-agent-modeThis creates a new chat and returns a response along with a Chat ID that you can use for follow-up questions. Remove --agent-to-agent-mode if you don't have context to share (like quick access to source files) or if the created chat is only for human usage.
Continue an existing chat
cx olly ask "Tell me more about the error rates" --chat-id <chat-id> --agent-to-agent-modeUse --chat-id to continue a conversation and maintain context from previous messages. Background the follow-up too when it kicks off another investigation.
Model selection
Available models include gpt-5.2 (default), claude-sonnet-4-5, sonnet-4.6, gpt-5.4, claude-haiku-4-5.
cx olly ask "Explain this error" --model claude-sonnet-4-5 --agent-to-agent-modeTimeout
For complex queries that may take longer, increase Olly's response timeout (default: 900 seconds):
cx olly ask "Deep analysis of last week's incidents" --timeout 1800 --agent-to-agent-mode--http-timeout <SECONDS> (or CX_HTTP_TIMEOUT) sets the HTTP request deadline for all CLI commands, including Olly. It is separate from the Olly response timeout.
Agent-to-agent mode
--agent-to-agent-mode defaults to false, since cx olly ask is used directly by humans as well as by agents. If you're an LLM/agent, pass `--agent-to-agent-mode` to opt into shorter, sub-agent-style responses: no charts/tables, clarifying questions instead of guessing, and reliance on your broader context.
cx olly ask "Analyze this for me" --agent-to-agent-modeIt's per-call, not per-chat. --chat-id does not remember it - re-pass --agent-to-agent-mode on every follow-up turn, or the mode silently flips back to human-facing mid-conversation.
Artifacts
Olly can generate artifacts like query results, previews, and citations. Artifact IDs appear as links in the agent's response text.
List all artifacts
cx olly artifacts list
cx olly artifacts list -o jsonGet artifact content
cx olly artifacts get <artifact-id>
cx olly artifacts get <artifact-id> -o jsonThe artifacts get command automatically:
- Fetches artifact metadata
- Downloads content from the presigned URL
- Decompresses gzip content
- Parses JSON and uses spill logic for large content
- Saves non-JSON text to a temp file
Output behavior:
- JSON content: Displayed directly, or spilled to file if large
- Text content: Saved to temp file (e.g.,
/tmp/cx_results_artifact_<id>_<hash>.txt)
Workflow Examples
Investigate an issue
# Start investigation — run in the background and poll for completion
cx olly ask "Why is the checkout service showing high latency? Check logs with 'checkout:' strings and aws related metrics" --agent-to-agent-mode
# Follow up with the chat ID from the response — also background and poll
cx olly ask "What changed in the last hour?" --chat-id abc-123-def --agent-to-agent-mode
# Once the interaction has completed, get any generated charts
cx olly artifacts list -o json | jq '.[0].id'
cx olly artifacts get <artifact-id>Get JSON output for scripting
# Get response as JSON
cx olly ask "List top 5 error messages" -o json --agent-to-agent-mode | jq '.response'
# Parse artifacts
cx olly artifacts list -o json | jq '.[] | {id, filename, created_at}'Detailed analysis with specific model
cx olly ask "Perform root cause analysis for the outage on 2024-01-15" \
--model claude-sonnet-4-5 \
--timeout 1800 \
--agent-to-agent-modeKey Principles
- Async by default - run
cx olly askas a background process and poll it for completion; only run inline (blocking) for short questions you expect Olly to answer quickly - Chat IDs enable context - save the Chat ID from responses to continue conversations
- Use `-o json` for scripting - pipe to
jqfor filtering and extraction - Artifact IDs are in response text - look for markdown links like
[Chart](https://...artifact_view/<id>) - Single-profile only -
cx ollydoes not support multi-profile queries - Large artifacts auto-spill - JSON content over the configured limit is saved to temp files
- Check source code before asking - give Olly concrete context from the source code if available, such as which metric to start investigating from, before calling it
- Limit investigation scope - guide Olly to the correct limited scope, for example limit to just logs or to specific time ranges
- Pass `--agent-to-agent-mode` when calling as an LLM/agent - it defaults to
false(human-facing); agents should opt in for shorter, sub-agent-style responses
Related Skills
- `cx-telemetry-querying` - for direct DataPrime/PromQL queries without AI agent assistance (covers logs, spans, metrics, RUM)
- `cx-alerts` - for managing alert definitions

