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alaimo-labs

@alaimo-labs source repo

31 published skills

  1. Survey Design · alaimo-labs
    How to design survey questionnaires and analyze their results — question types, wording bias, ordering, scales, quantitative summaries, and coding open-ended responses. Use when designing a survey or questionnaire, writing survey questions, choosing scales, or analyzing survey results and responses.
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  2. Exposure Plans · alaimo-labs
    How to build an Exposure Plan — an ordered set of accumulative reveal levels that validate a feature's hypothesis layer by layer, each level testing one falsifiable belief. Use when slicing a feature, planning a progressive reveal, designing how to validate a hypothesis in stages, or deciding what to expose to which users in what order.
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  3. Analyze Survey · alaimo-labs
    Analyze survey results — quantitative summary by learning goal, coded open-ends, and actionable insights extracted from the data
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  4. Derive Personas · alaimo-labs
    Derive evidence-based personas from patterns that recur across real interviews and survey results — bottom-up, every trait traceable to evidence
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  5. Research Market · alaimo-labs
    Run secondary research / benchmarking on your product's market — competitors, alternatives, pricing, trends — with every claim labeled by provenance, mapped back to your unverified beliefs
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  6. Review Evidence · alaimo-labs
    Weekly evidence review — sweep the product/ artifacts created since the last review against the unverified beliefs in product/overview.md, propose belief-status annotations, report what's drifting, and log human corrections to AI proposals
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  7. Design Interview · alaimo-labs
    Design an interview guide for real user research from what you want to learn or validate — grounded in your insights, assumptions, and personas
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  8. Extract Insights · alaimo-labs
    Extract actionable product insights from one or more interview transcripts (synthetic or real)
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  9. Interview Guides · alaimo-labs
    How to design an interview guide (discussion guide) for real user research — from learning goals to open, non-leading questions, funnel structure, and probes. Use when designing an interview, writing interview questions, preparing a discussion guide, or planning research conversations with real users.
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  10. Persona Critique · alaimo-labs
    How to run a persona critique — a synthetic persona reviews a spec, PRD, or product idea in character and returns a structured rating with strengths, concerns, and suggestions. Use when critiquing a spec with personas, getting user feedback on a document, running a review panel, or stress-testing a PRD from the user's perspective.
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  11. Frame Opportunity · alaimo-labs
    Frame an opportunity — a problem for a segment, backed by signals — before any solution is chosen. Evidence-grounded questioning, one question at a time; unknowns become beliefs, and the output is a research agenda, not a feature
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  12. Generate Personas · alaimo-labs
    Generate a diverse set of synthetic user personas for your product — typed primary/secondary/tertiary/negative, mix on request — saved as markdown files ready for interviews and critiques
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  13. Interview Persona · alaimo-labs
    Interview one of your synthetic personas — exploration mode (open discovery) or validation mode (feedback on an idea)
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  14. Insight Extraction · alaimo-labs
    How to extract actionable product insights from user interview transcripts (real or synthetic) — focus areas, quality bar, and output format. Use when analyzing interviews, synthesizing research, extracting insights, or turning transcripts and user feedback into product decisions.
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  15. Secondary Research · alaimo-labs
    How to do secondary research and benchmarking for product discovery — provenance discipline, source hierarchy, research lanes (competitors, alternatives, pricing, trends), and mapping findings back to your unverified beliefs. Use when researching a market, benchmarking competitors, sizing an opportunity, or gathering existing knowledge about a product space.
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  16. Synthetic Personas · alaimo-labs
    How to create rich, diverse synthetic user personas (archetypes) for product discovery — structure, design principles, and diversity requirements. Use when creating personas, user archetypes, synthetic users, or when the user asks to model their target users, segments, or audiences.
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  17. Cognitive Frictions · alaimo-labs
    The Cognitive Friction Map (MFC) — four categories of cognitive friction (transformation, limiter, standardizer, evaluator points) for finding where AI adds real value in a user journey. Use when analyzing a journey or workflow for AI opportunities, identifying cognitive frictions or bottlenecks in user tasks, or deciding which steps of a process deserve an AI feature.
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  18. Opportunity Framing · alaimo-labs
    How to frame a product opportunity — a problem for a segment, backed by signals, with no solution chosen yet — and keep it apart from solutions. Opportunity vs. solution vs. outcome, signals vs. proof, the value and viability beliefs of an opportunity, the research agenda, and the Opportunity Solution Tree as a file layout. Use when framing an opportunity, deciding whether something is a problem or a solution, working with an opportunity solution tree, or when an idea arrives as a solution and you need the problem underneath it.
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  19. Formulate Hypothesis · alaimo-labs
    Turn a product idea or conviction into a falsifiable hypothesis with behavioral success criteria and a decision rule
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  20. Synthetic Interviews · alaimo-labs bundle
    How to roleplay a synthetic persona in a product-discovery interview, with two modes — exploration (open discovery of pains and workflows) and validation (structured feedback on a specific idea or solution). Use when interviewing a persona, simulating a user interview, roleplaying a user, or running discovery/validation conversations with synthetic users.
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  21. Test Interview Guide · alaimo-labs
    Pretest an interview guide by running it against a synthetic persona — surfaces speculation, leading questions, dead ends, and coverage gaps in the guide, then revises it
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  22. Falsifiable Hypotheses · alaimo-labs
    How to turn a product conviction into a falsifiable hypothesis with a measurable experiment — structure, quality bar, and behavioral success criteria. Use when formulating a hypothesis, designing an experiment, defining success criteria for a prototype, or when the user states a belief about users that hasn't been tested.
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  23. Write Spec · alaimo-labs
    Draft an evidence-grounded feature spec from your insights and personas — problem, user journey, critical user stories with acceptance criteria, falsifiable hypothesis
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  24. Clarify Idea · alaimo-labs
    Present a fuzzy feature idea and get it clarified through evidence-grounded questioning, one question at a time — decisions stay yours, unknowns become assumptions
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  25. Plan Exposure · alaimo-labs
    Build an Exposure Plan for a hypothesis or spec — accumulative reveal levels, each testing one falsifiable belief
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  26. Critique Spec · alaimo-labs
    Have your synthetic personas critique a spec, PRD, or product idea — individual in-character reviews plus a panel synthesis
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  27. Design Survey · alaimo-labs
    Design a survey questionnaire from what you want to measure or validate — grounded in your insights and assumptions, ready to paste into any survey tool
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  28. Feature Specs · alaimo-labs
    Structure and quality bar for evidence-grounded feature specs — problem, user journey, critical user stories with acceptance criteria, and a falsifiable hypothesis. Use when writing a feature spec or PRD, defining user stories or acceptance criteria, mapping a user journey, or turning insights into a spec.
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  29. Map Frictions · alaimo-labs
    Analyze a user journey step by step to identify cognitive frictions where AI could add real value (Cognitive Friction Map)
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  30. Slice Feature · alaimo-labs
    Turn a feature spec's hypothesis into an Exposure Plan — accumulative reveal levels that each test one falsifiable belief
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  31. Start Product · alaimo-labs
    Start product discovery — place the product on two axes (new/existing, commercial/internal) and capture its context plus a tagged, ranked list of unverified beliefs into product/overview.md, the context every other skill reads
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