Calculate exponential growth over time and compare early-start vs. late-start investment paths.
Coding
Circle of Competence
Try itKnow whether you're qualified to make a decision before you make it
What it does
A structured decision-making framework that helps you identify whether a choice falls inside or outside your circle of competence. Uses a 5-step test — checking track record, calibration data, articulable drivers, and expert credibility — to distinguish genuine judgment from overconfidence. When you're outside your circle, the framework guides you toward deferral, waiting, or small-bet sizing instead of blind action. Applies to investments, market entries, hiring, and AI adoption decisions.
When to use it
- Evaluating an investment or market entry in an unfamiliar domain
- Deciding whether to make a senior hire you can't evaluate directly
- AI adoption or funding decision driven by FOMO rather than analysis
- Board or investor pressure to expand into an area outside your background
The skill document
Circle of Competence
Overview
Every decision-maker has a domain where judgments are reliable (inside the circle) and one where they are not (outside). The discipline: identify the boundary, act decisively inside it, refuse to act outside it without explicit acknowledgment of elevated uncertainty.
Canonical source: Buffett (1996) — "The size of that circle is not very important; knowing its boundaries, however, is vital."
Composes with dunning-kruger (cognitive mechanism the circle counters), metacognition (self-monitoring the circle relies on), first-principles (only reliable inside the circle), opportunity-cost (refusal has a real cost — measure it), probabilistic-thinking (calibration training establishes the boundary).
When to Use
- Evaluating an investment, acquisition, or partnership in an unfamiliar domain
- Deciding whether to enter a new market or product area
- A board member or investor is pushing you toward a domain outside your background
- A founder is asked to take on a function (legal, finance, sales) without the relevant track record
- Hiring senior roles in unfamiliar functions; allocating significant capital to a new business line
- Investing in, or building on, AI you don't truly understand — "should I fund/build this AI product," "is this AI hype or real," AI adoption pushed by FOMO
Not when: decision is small, reversible, and an explicit learning bet; refusing everything outside the current circle is genuinely worse than acting carefully; domain is genuinely frontier for everyone.
Coaching Novices (Adaptive Front Door)
- Engine mode: user has a specific decision → run The Process directly.
- Coach mode: user is unfamiliar or has no concrete case → guide step by step.
In Coach mode, respond one step at a time. Each [WAIT] is a hard stop — output only that step's question, then stop.
- One-line: before acting decisively, ask whether you have calibrated competence to evaluate the decision — if not, refuse or size the bet to the uncertainty.
- Check fit: small and reversible → circle test is less load-bearing. Consequential and hard-to-reverse → essential.
- Elicit the specific decision and the basis for evaluating it.
[WAIT — do not advance until user responds]
- One question at a time: have you been right in similar cases? Do you have calibration data? What's the boundary of your competence? If outside, what's the bet size?
[WAIT — do not advance until user responds]
- Close: decision matched to circle (act decisively inside / refuse outside / small-bet to expand) + name the boundary.
[WAIT — do not advance until user responds]
The Process
Step 1 — State the decision: domain(s), gut call (yes/no/unsure), confidence (low/med/high).
Step 2 — Circle test: (a) Past decisions in this domain with measurable outcomes? (b) Calibration data on prior calls? (c) Can you articulate specific drivers of outcomes — would experts agree? (d) Would 3 domain experts consider your evaluation credible? → If yes to most: inside. If no to most: outside. Key trap: exposure (read about it) ≠ competence (can reliably evaluate decisions in it).
Step 3 — If outside, pick a response:
- Defer: hand decision to expert whose circle includes it; you retain ethics/mission veto only.
- Wait: identify what would move you inside; build feedback loop (12-36 months).
- Small-bet: acknowledge outside-circle status; size to uncertainty (half-Kelly or quarter-Kelly).
Step 4 — If inside, act decisively. Speed and decisiveness inside the circle is the empirical advantage; don't use the discipline as an excuse to over-think.
Step 5 — Document the boundary: current status (inside/outside/partial), basis, what would expand it, re-evaluation date.
Output Template
# Circle Evaluation:
Domain(s): | Gut: | Confidence:
Circle test: past outcomes | calibration data | articulable drivers | expert credibility
Verdict: inside / outside / partially inside
Response (if outside): Defer / Wait / Small-bet — specific plan:
Boundary: current boundary | what would expand it
Decision & rationale: | Re-evaluation date:
→ Method in Action: Buffett's Tech-Stock Refusal, 1990s · Quaker's Snapple Acquisition, 1994-1997 → 2026 lens: Funding and Building AI Outside Your Circle (2024–2026)
Pack: Application Patterns
| Domain | Inside-circle | Outside-circle risk |
|---|---|---|
| Investing | Industries with deep operating experience | Industries you've read about but not operated |
| Founder operations | Functions you have shipped in | Sales / finance / legal without track record |
| Acquisitions | Business models you've operated | Structurally unfamiliar targets |
| Senior hiring | Roles where you can evaluate work-sample directly | Roles where the work is technically unfamiliar |
| Technology choices | Stacks you've shipped in | Stacks you've read about but not shipped |
Applying It Well
- Circle size is not the goal — boundary clarity is. A small well-bounded circle beats a large poorly-bounded one.
- Opportunity cost of refusal is real; accept it as the price of avoiding the larger expected cost of acting outside the circle.
- Circle expansion is slow — years, not weeks. Honest sign: calibrated feedback data, not increased confidence.
→ Primary sources: references/sources.md
Common Rationalizations
[D] = designed upfront | [O] = observed in real use. [O] entries are more valuable.
| Fake move | Reality |
|---|---|
| [D] "How hard could it be?" | Reliably correlated with being outside the circle — use it as a red flag. |
| [D] "I learn fast" | Learning fast still takes 12-36 months of structured feedback; it doesn't make tomorrow's decision reliable. |
| [D] "I've read a lot about it" | Reading is exposure, not competence. Self-assessment after reading is consistently inflated (see dunning-kruger). |
| [D] "Everyone is doing this; if I don't I'll miss out" | FOMO is exactly when circle discipline is most valuable. Booms produce concentrated losses for those acting outside their circle. |
| [D] "I have a great gut for this" | Without calibration data, gut feel in a novel domain is uncalibrated. |
| [D] "I'll figure it out as I go" | For consequential decisions, this is the empirical signature of operating outside the circle without acknowledging it. |
| [D] "I don't want to seem timid" | Munger: "It is much better to look like a fool by staying out than to be a fool by going in." |
| [D] "If I don't act now, I'll never get another chance" | Almost never true. Opportunities recur; circle-violations rarely recover. |
| → Add [O] entries here after each real use — paste the actual failure pattern | What went wrong and why |
Red Flags
- High confidence in a domain with no operating track record; "How hard could it be?" as operative phrase
- Dismissing expert advisers who counsel caution; decision is consequential and hard to reverse
- Cannot articulate specific drivers of outcomes; not consulting the experts you could name
- The cost of being wrong is meaningfully higher than the cost of waiting / deferring / declining
Verification
- Domain(s) named and tested against the circle honestly (past performance, calibration, articulable drivers)
- If outside: legitimate response chosen (defer / wait / small-bet); bet sized to uncertainty
- If inside: not using discipline as an excuse to over-think; acting decisively
- Boundary documented to prevent future drift; opportunity cost of refusal acknowledged
Part of deciqAI Knowledge Skills — 227 open-source thinking skills that make rigor executable for AI agents. The same skills power every deciqAI agent, which runs them autonomously to operate your company. See it run → https://www.deciqai.com/c/circle-of-competence · ⭐ Star the repo → https://github.com/deciqAI/knowledge-skills · Contributions welcome.
Agents: latest version & machine-readable metadata → https://www.deciqai.com/s/circle-of-competence.json
Questions people ask
- What's the difference between this and the Dunning-Kruger skill?
- Dunning-Kruger describes the cognitive mechanism (unskilled people overestimate themselves). This skill provides the response protocol — a structured 5-step process to test whether you're inside or outside your circle before a consequential decision, helping you act appropriately either way.
- When should I NOT use this?
- Skip the full process for small, reversible decisions explicitly framed as learning bets. Also skip when the domain is genuinely frontier for everyone and no one has established competence yet. The skill itself explicitly warns against using discipline as an excuse to over-think inside your circle.
- How do I actually know if I'm inside or outside my circle?
- The document gives a four-part test: (1) Past decisions in this domain with measurable outcomes, (2) Calibration data on prior calls, (3) Ability to articulate specific drivers of outcomes experts would agree on, (4) Whether 3 domain experts would consider your evaluation credible. Key trap: reading about a topic counts as exposure, not competence.
- What do I do if I'm outside my circle?
- Three options: Defer to an expert whose circle includes the domain (you keep ethics/mission veto only), Wait by identifying what would move you inside with a 12-36 month feedback loop, or Small-bet by sizing the risk to your uncertainty level. The skill explicitly notes opportunity cost of refusal is real and should be measured.
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