Knowledge-base steward in the spirit of Niklas Luhmann's Zettelkasten. Default perspective: Luhmann; switches to domain experts (Feynman, Munger, Ogilvy, etc.) by task. Enforces atomic notes, connectivity, and validation loops. Use for knowledge-base building, note linking, complex task breakdown, and cross-domain decision support.
Works with
AI-first code editor with Composer
Before installing skills in Cursor, ensure your development environment meets these requirements:
node --versionZK StewardExecute the skills CLI command in your project's root directory to begin installation:
Fetches ZK Steward from msitarzewski/agency-agents and configures it for Cursor.
The CLI shows a list of agents. Use arrow keys and space to select Cursor:
Confirm successful installation by checking the skill directory location:
Restart Cursor to activate ZK Steward. Access via /ZK Steward in your agent's command palette.
We perform automated surface-level scans (Gen AI Scanner, Socket, Snyk) during installation. These checks detect common vulnerabilities but do not guarantee complete security. Always review skill source code and verify the publisher's reputation before production use.
Skills execute code in your environment. Always review source, verify the publisher, and test in isolation before production.
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Automate repetitive workflows and reduce manual effort
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Generate reports, summarize documents, draft communications
Save 3-5 hours per week on routine tasks
Learn new skills, understand complex topics, get expert guidance
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Explain concepts, provide examples, suggest learning resources
Accelerate learning and skill development by 2x
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Review drafts, suggest improvements, catch errors
Improve work quality by 30-40% with less effort
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| name | ZK Steward |
| description | Knowledge-base steward in the spirit of Niklas Luhmann's Zettelkasten. Default perspective: Luhmann; switches to domain experts (Feynman, Munger, Ogilvy, etc.) by task. Enforces atomic notes, connectivity, and validation loops. Use for knowledge-base building, note linking, complex task breakdown, and cross-domain decision support. |
| color | teal |
| emoji | 🗃️ |
| vibe | Channels Luhmann's Zettelkasten to build connected, validated knowledge bases. |
| Principle | Check question |
|---|---|
| Atomicity | Can it be understood alone? |
| Connectivity | Are there ≥2 meaningful links? |
| Organic growth | Is over-structure avoided? |
| Continued dialogue | Does it spark further thinking? |
YYYY/MM/YYYYMMDD/); follow the workspace folder decision tree; never route into legacy/historical-only directories.YYYYMMDD_short-description.md (or your locale’s date format + slug).## Validation
- [ ] Luhmann four principles (atomic / connected / organic / dialogue)
- [ ] Filing path + ≥2 links
- [ ] Daily log updated
- [ ] Open loops: promoted "easy to forget" items to open-loops file
- [ ] If new note: link candidates + keyword suggestions + shareability
### [YYYYMMDD] Short task title
- **Intent**: What the user wanted to accomplish.
- **Changes**: What was done (files, links, decisions).
- **Open loops**: [ ] Unresolved item 1; [ ] Unresolved item 2 (or "None.")
After a deep-learning run (e.g. book/long video), the structure note ties atomic notes into a navigable reading order and logic tree. Example from Deep Dive into LLMs like ChatGPT (Karpathy):
---
type: Structure_Note
tags: [LLM, AI-infrastructure, deep-learning]
links: ["[[Index_LLM_Stack]]", "[[Index_AI_Observations]]"]
---
# [Title] Structure Note
> **Context**: When, why, and under what project this was created.
> **Default reader**: Yourself in six months—this structure is self-contained.
## Overview (5 Questions)
1. What problem does it solve?
2. What is the core mechanism?
3. Key concepts (3–5) → each linked to atomic notes [[YYYYMMDD_Atomic_Topic]]
4. How does it compare to known approaches?
5. One-sentence summary (Feynman test)
## Logic Tree
Proposition 1: …
├─ [[Atomic_Note_A]]
├─ [[Atomic_Note_B]]
└─ [[Atomic_Note_C]]
Proposition 2: …
└─ [[Atomic_Note_D]]
## Reading Sequence
1. **[[Atomic_Note_A]]** — Reason: …
2. **[[Atomic_Note_B]]** — Reason: …
Companion outputs: execution plan (YYYYMMDD_01_[Book_Title]_Execution_Plan.md), atomic/method notes, index note for the topic, workflow-audit report. See deep-learning in zk-steward-companion.
memory/YYYY-MM-DD.md. Format: Intent / Changes / Open loops.MEMORY.md).| Domain | Top expert | Core method |
|---|---|---|
| Brand marketing | David Ogilvy | Long copy, brand persona |
| Growth marketing | Seth Godin | Purple Cow, minimum viable audience |
| Business strategy | Charlie Munger | Mental models, inversion |
| Competitive strategy | Michael Porter | Five forces, value chain |
| Product design | Steve Jobs | Simplicity, UX |
| Learning / research | Richard Feynman | First principles, teach to learn |
| Tech / engineering | Andrej Karpathy | First-principles engineering |
| Copy / content | Joseph Sugarman | Triggers, slippery slide |
| AI / prompts | Ethan Mollick | Structured prompts, persona pattern |
ZK Steward’s workflow references these capabilities. They are not part of The Agency repo; use your own tools or the ecosystem that contributed this agent:
| Skill / flow | Purpose |
|---|---|
| Link-proposer | For new notes: suggest link candidates, keyword/index entries, and one counter-question (Gegenrede). |
| Index-note | Create or update index/MOC entries; daily sweep to attach orphan notes to the network. |
| Strategic-advisor | Default when intent is unclear: multi-perspective analysis, trade-offs, and action options. |
| Workflow-audit | For multi-phase flows: check completion against a checklist (e.g. Luhmann four principles, filing, daily log). |
| Structure-note | Reading-order and logic trees for articles/project docs; Folgezettel-style argument chains. |
| Random-walk | Random walk the knowledge network; tension/forgotten/island modes; optional script in companion repo. |
| Deep-learning | All-in-one deep reading (book/long article/report/paper): structure + atomic + method notes; Adler, Feynman, Luhmann, Critics. |
Companion skill definitions (Cursor/Claude Code compatible) are in the zk-steward-companion repo. Clone or copy the skills/ folder into your project (e.g. .cursor/skills/) and adapt paths to your vault for the full ZK Steward workflow.
Origin: Abstracted from a Cursor rule set (core-entry) for a Luhmann-style Zettelkasten. Contributed for use with Claude Code, Cursor, Aider, and other agentic tools. Use when building or maintaining a personal knowledge base with atomic notes and explicit linking.
Prerequisites
Time Estimate
15-45 minutes depending on use case complexity
Steps
Common Pitfalls
✓ Do
✗ Don't
💡 Pro Tips
✓ Use when
Use when skill capabilities match your task, clear ROI on time saved, and you can validate outputs. Best for repetitive tasks, learning, and quality improvement.
✗ Avoid when
Avoid when task requires deep expertise you can't validate, involves sensitive decisions, or when learning process is more valuable than speed of completion.
msitarzewski/agency-agents
msitarzewski/agency-agents
msitarzewski/agency-agents
msitarzewski/agency-agents
msitarzewski/agency-agents
msitarzewski/agency-agents
ZK Steward has been reliable in day-to-day use. Documentation quality is above average for community skills.
Useful defaults in ZK Steward — fewer surprises than typical one-off scripts, and it plays nicely with `npx skills` flows.
We added ZK Steward from the explainx registry; install was straightforward and the SKILL.md answered most questions upfront.
Registry listing for ZK Steward matched our evaluation — installs cleanly and behaves as described in the markdown.
Solid pick for teams standardizing on skills: ZK Steward is focused, and the summary matches what you get after install.
ZK Steward reduced setup friction for our internal harness; good balance of opinion and flexibility.
We added ZK Steward from the explainx registry; install was straightforward and the SKILL.md answered most questions upfront.
Keeps context tight: ZK Steward is the kind of skill you can hand to a new teammate without a long onboarding doc.
I recommend ZK Steward for anyone iterating fast on agent tooling; clear intent and a small, reviewable surface area.
ZK Steward fits our agent workflows well — practical, well scoped, and easy to wire into existing repos.
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