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kitaru-scoping

Scope and validate whether an agent workflow is well-suited for Kitaru's durable execution model, then design the flow architecture — checkpoint boundaries, wait points, replay anchors, artifact strategy, operator surface, and MVP scope. Runs a structured interview to help users identify what benefits from durability, what doesn't, what should become explicit artifacts or external state, and where replay/resume boundaries should go. Produces a flow_architecture.md specification document. Use this skill whenever a user describes an agent workflow they want to make durable, asks whether Kitaru is right for their use case, seems unsure about where to place checkpoints or waits, needs to choose between SDK / KitaruClient / CLI / MCP control surfaces, asks how to handle state across executions, or arrives with a workflow that might be too simple or too complex for Kitaru, or needs to choose among PydanticAI, OpenAI Agents, LangGraph, Claude Agent SDK, and Gemini Interactions adapter boundaries. Also use when the u

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Quellinformationen

Repository
zenml-io/kitaru-skills
Letzte Quellaktivität
30. Juni 2026 um 07:33
Erkannte Sprache von SKILL.md
Englisch
Sterne
1
Forks
0

Installationsoptionen

Standardmäßig ist der Prompt ausgewählt, der zuerst die Quelle prüft. Sie können zu einem direkten Befehl wechseln oder eine lokale Kopie herunterladen.

Quelldateien prüfen

Lesen Sie SKILL.md und alle von SkillsMP angezeigten Begleitdateien, bevor Sie sich für eine Installation entscheiden.