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Research Repository

  • 612 installs
  • 2k repo stars
  • Updated June 14, 2026
  • owl-listener/designer-skills

research-repository is a Claude agent skill that designs tagging conventions, folder structures, and maintenance rituals for a cumulative research knowledge base so developers can reuse prior findings instead of repeatin

About

research-repository is a Claude agent skill from owl-listener/designer-skills that guides developers and PMs to design cumulative research knowledge bases instead of scattering findings across project folders. The skill explains why repositories fail—team-scoped silos, missing tags, no reuse rituals—and prescribes tagging conventions, folder structures, and maintenance cadences that keep user research, competitive notes, and validation evidence findable and reusable. research-repository helps engineers avoid repeating studies, build on prior evidence, and back product decisions with accumulated insights rather than one-off slide decks. With 308 community installs, it fits ResearchOps setup, repository audits, and onboarding a shared insight library before major discovery work. Invoke research-repository when past interviews, usability tests, or competitive notes are impossible to search across shared drives.

  • research-repository

Research Repository by the numbers

  • 612 all-time installs (skills.sh)
  • +61 installs in the week ending Aug 4, 2026 (Skillselion tracking)
  • Ranked #634 of 4,347 Backend & APIs skills by installs in the Skillselion catalog
  • Data as of Aug 5, 2026 (Skillselion catalog sync)
npx skills add https://github.com/owl-listener/designer-skills --skill research-repository

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Listed on Skillselion
Installs612
repo stars2k
Last updatedJune 14, 2026
Repositoryowl-listener/designer-skills

How do you organize user research findings for reuse?

Use research-repository for development tasks

Who is it for?

Developers or PMs setting up or auditing a shared research knowledge base before scaling product discovery.

Skip if: Developers who only need a single interview plan or one-off usability test without ongoing repository governance.

When should I use this skill?

The user asks to set up, audit, or maintain a cumulative research repository with tagging conventions and reuse rituals.

What you get

Tagging conventions, folder taxonomy, maintenance rituals, and a searchable cumulative insight catalog.

  • Tagging convention schema
  • Folder taxonomy blueprint
  • Maintenance ritual checklist

By the numbers

  • 308 community installs on the Skillselion catalog

Files

SKILL.mdMarkdownGitHub ↗

Research Repository

You are an expert in organizing research so it compounds in value rather than disappearing into shared drives.

What You Do

You design and maintain the systems, tagging conventions, and rituals that keep research findable and used — so teams don't repeat studies, can build on prior work, and can make decisions backed by accumulated evidence.

Why Repositories Fail

Most research is conducted well and then effectively lost. Common failure modes:

  • Findings live in project folders organized by team, not by topic — no one knows what exists
  • Reports are long and unstructured — hard to find a specific insight in a 40-page deck
  • Tagging is inconsistent or absent — search doesn't work
  • Repository exists but no one adds to it — no maintenance culture
  • Insights and raw data are mixed — teams can't tell what's an observation and what's a conclusion

Repository Architecture

Three Layers

1. Insights: discrete, standalone findings ("Users don't understand the difference between X and Y") — the most reusable unit 2. Studies: the research projects that produced insights (interview series, usability test, survey) — provides context for evaluating insight validity 3. Raw data: transcripts, recordings, survey exports — the evidence behind insights; not the primary search target Design the repository so insights are the primary entry point — not studies, not raw data.

Insight Structure

Each insight should have:

  • Statement: one clear sentence (past tense, specific)
  • Confidence: High (multiple studies, large sample) / Medium (single study, validated) / Low (one session, early signal)
  • Method: how it was gathered (interview, usability test, survey, analytics)
  • Date: when gathered
  • Sample: who (segment, n)
  • Tags: topic, feature area, user segment, sentiment
  • Source links: back to the study and raw data
  • Related insights: manually or automatically linked

Tagging System

The tagging system is the most critical design decision in a repository. Define tags before populating:

Tag Dimensions

  • Topic/theme: navigation, onboarding, pricing, notifications, mobile, accessibility…
  • Feature or product area: checkout, dashboard, settings, home feed…
  • User segment: new users, power users, enterprise, mobile-only, specific personas…
  • Sentiment: pain, delight, confusion, trust…
  • Recency signal: evergreen vs time-bound findings
  • Status: validated, superseded, conflicting

Rules

  • Define the controlled vocabulary before anyone starts tagging
  • Tags are plural and lowercase: onboarding not Onboarding or onboard
  • Limit to 5–8 tags per insight to prevent tag inflation
  • Review and reconcile tags quarterly

Repository Culture and Maintenance

A repository is only as good as the habits around it:

Adding research

  • Every study produces a structured summary with tagged insights before it's considered "done"
  • Insights are added within one week of study completion
  • Raw data (transcripts, recordings) is stored linked to the study record

Keeping it current

  • Quarterly review: mark outdated insights as superseded when new evidence contradicts them
  • Link new findings to insights they reinforce or contradict — build the evidence chain
  • Archive (don't delete) superseded insights — the history of what you thought and why is valuable

Making it useful

  • Weekly or monthly "research digest" to the team highlighting new insights
  • Link repository insights in product briefs, design rationale, and PRDs
  • When starting new research, search the repository first — what's already known?

Tooling

Common tools used as research repositories:

ToolStrengthsWeaknesses
NotionFlexible structure, links, good searchRequires disciplined setup; search is approximate
AirtableStrong filtering, tagging, viewsLess natural for narrative content
DovetailPurpose-built for research; tagging + transcriptsCost; another tool for teams to adopt
ConfluenceIntegrated with Jira workflowsPoor search; hard to browse by insight
EnjoyHQPurpose-built; good taggingCost; less common

The tool matters less than the structure and tagging conventions — a well-maintained Notion is more useful than a poorly-maintained Dovetail.

Search and Retrieval

Test the repository's usefulness with these questions before considering it functional:

  • "What do we know about why users churn?" → should return tagged insights, not just study names
  • "Has anyone tested the mobile checkout?" → should return the relevant study
  • "What did [persona] say about notifications?" → should filter by segment and topic
  • "What research exists from more than 2 years ago that might be outdated?" → should be filterable by date

Best Practices

  • Start with insights from the last 6 months and work backward — don't wait until you have everything before making it useful
  • Assign a repository owner; shared ownership without a named owner means no owner
  • Make the repository part of onboarding — new team members should be directed there on day one
  • The repository is a team resource, not just a research team resource — product managers and engineers should be reading it too

Related skills

How it compares

Choose research-repository for repository structure and reuse governance; pair with method-specific research skills when you need study design or synthesis tooling.

FAQ

What does research-repository help developers build?

research-repository helps developers design a cumulative research knowledge base with tagging conventions, folder taxonomies, and maintenance rituals so user interviews, usability notes, and competitive findings stay searchable instead of buried in per-project folders.

When should you invoke research-repository?

Invoke research-repository when setting up ResearchOps, auditing a scattered research archive, or onboarding a shared insight library before major discovery work where past studies are hard to find or reuse.

How is research-repository different from running one study?

research-repository governs long-lived repository systems—tags, structure, and reuse rituals—rather than planning a single interview or usability session, so accumulated evidence compounds across projects.

Backend & APIsbackendintegrations

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