agent-watchdog
Use when asked to watch, babysit, audit, review, compare, or fix another agent's work from a…
Use when running Claude Fable on codebase-heavy or token-heavy work and the user wants Fable to orchestrate research, coding, and testing while cheaper subagents do bounded heavy lifting.
$ npx -y skills add BuilderIO/skills --skill efficient-fable --agent claude-codeHow it fires
How this skill gets triggered: by you, by Claude, or both.
/efficient-fableContext preview
The summary Claude sees to decide when to auto-load this skill.
Use when running Claude Fable on codebase-heavy or token-heavy work and the user wants Fable to orchestrate research, coding, and testing while cheaper subagents do bounded heavy lifting.
name: efficient-fable description: Use when running Claude Fable on codebase-heavy or token-heavy work and the user wants Fable to orchestrate research, coding, and testing while cheaper subagents do bounded heavy lifting.
Use Claude Fable as the orchestrator, architect, synthesizer, and final judge. Use cheaper subagents for token-heavy research, coding, testing, and summarization that do not require Fable's full judgment.
Reserve Fable for:
1. Name the expensive-token risk: large repo search, long logs, broad docs, or repetitive edits. 2. Split independent work into subagents before reading everything yourself. 3. Use cheaper models for research scans, inventory, search summaries, narrow bug hunts, browser/testing passes, test output reduction, and bounded code edits. 4. Ask subagents for concise evidence: files, line references, commands run, diffs, uncertainties, and stop conditions they hit. 5. Spend Fable tokens on the decision layer: compare results, resolve conflicts, choose the implementation path, and review the final patch.
Prefer parallel subagents when the slices do not depend on each other. Keep blocking or highly coupled work local.
Write delegated prompts as if the subagent has no useful chat context. Include only the context it needs:
scope.
screenshots, and uncertainty.
look like when that is knowable.
a reasonable retry, or the task needs out-of-scope files, stop and report instead of improvising.
Treat subagent reports as leads, not facts. Before using a high-impact finding, opening a PR, or telling the user the work is done, Fable should reopen the important cited files, confirm the relevant line refs or failures, and review the final diff against the task. Let lighter agents gather signal; keep truth-judgment with Fable.
Treat these as soft defaults, not rigid rules:
Fable decides what evidence changes the plan.
shared-file coordination, integration, and final review.
browser checks that matter. Let lighter agents run targeted tests, browser flows, screenshots, and log reduction, then report exact commands, failures, likely causes, and whether failures look flaky, environmental, or real.
small fixes; Fable decides which diagnosis is most trustworthy.
If a task is tiny or the validation itself needs delicate judgment, keep it with Fable.
Use `assets/fable-orchestrator.excalidraw` when a visual explanation helps.
For codebase-heavy work, it is reasonable to describe this as up to 3-5x more cost-efficient and 2-4x faster when independent research, coding, or testing slices can run in parallel. Treat those as workload-dependent estimates, not guarantees.
Good launch copy:
> Make Claude Fable more efficient by using cheaper subagents for token-heavy > research, coding, and testing, saving Fable for judgment, architecture, > synthesis, and final review.
Small, composable skills for your favorite agent.
Repo: BuilderIO/skills
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