product-manager-toolkit

Product Manager Toolkit

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Product Manager Toolkit

Essential tools and frameworks for modern product management, from discovery to delivery.

Quick Start

For Feature Prioritization

python scripts/rice_prioritizer.py sample # Create sample CSV python scripts/rice_prioritizer.py sample_features.csv --capacity 15

For Interview Analysis

python scripts/customer_interview_analyzer.py interview_transcript.txt

For PRD Creation

  • Choose template from references/prd_templates.md

  • Fill in sections based on discovery work

  • Review with stakeholders

  • Version control in your PM tool

Core Workflows

Feature Prioritization Process

Gather Feature Requests

  • Customer feedback

  • Sales requests

  • Technical debt

  • Strategic initiatives

Score with RICE

Create CSV with: name,reach,impact,confidence,effort

python scripts/rice_prioritizer.py features.csv

  • Reach: Users affected per quarter

  • Impact: massive/high/medium/low/minimal

  • Confidence: high/medium/low

  • Effort: xl/l/m/s/xs (person-months)

Analyze Portfolio

  • Review quick wins vs big bets

  • Check effort distribution

  • Validate against strategy

Generate Roadmap

  • Quarterly capacity planning

  • Dependency mapping

  • Stakeholder alignment

Customer Discovery Process

Conduct Interviews

  • Use semi-structured format

  • Focus on problems, not solutions

  • Record with permission

Analyze Insights

python scripts/customer_interview_analyzer.py transcript.txt

Extracts:

  • Pain points with severity

  • Feature requests with priority

  • Jobs to be done

  • Sentiment analysis

  • Key themes and quotes

Synthesize Findings

  • Group similar pain points

  • Identify patterns across interviews

  • Map to opportunity areas

Validate Solutions

  • Create solution hypotheses

  • Test with prototypes

  • Measure actual vs expected behavior

PRD Development Process

Choose Template

  • Standard PRD: Complex features (6-8 weeks)

  • One-Page PRD: Simple features (2-4 weeks)

  • Feature Brief: Exploration phase (1 week)

  • Agile Epic: Sprint-based delivery

Structure Content

  • Problem → Solution → Success Metrics

  • Always include out-of-scope

  • Clear acceptance criteria

Collaborate

  • Engineering for feasibility

  • Design for experience

  • Sales for market validation

  • Support for operational impact

Key Scripts

rice_prioritizer.py

Advanced RICE framework implementation with portfolio analysis.

Features:

  • RICE score calculation

  • Portfolio balance analysis (quick wins vs big bets)

  • Quarterly roadmap generation

  • Team capacity planning

  • Multiple output formats (text/json/csv)

Usage Examples:

Basic prioritization

python scripts/rice_prioritizer.py features.csv

With custom team capacity (person-months per quarter)

python scripts/rice_prioritizer.py features.csv --capacity 20

Output as JSON for integration

python scripts/rice_prioritizer.py features.csv --output json

customer_interview_analyzer.py

NLP-based interview analysis for extracting actionable insights.

Capabilities:

  • Pain point extraction with severity assessment

  • Feature request identification and classification

  • Jobs-to-be-done pattern recognition

  • Sentiment analysis

  • Theme extraction

  • Competitor mentions

  • Key quotes identification

Usage Examples:

Analyze single interview

python scripts/customer_interview_analyzer.py interview.txt

Output as JSON for aggregation

python scripts/customer_interview_analyzer.py interview.txt json

Reference Documents

prd_templates.md

Multiple PRD formats for different contexts:

Standard PRD Template

  • Comprehensive 11-section format

  • Best for major features

  • Includes technical specs

One-Page PRD

  • Concise format for quick alignment

  • Focus on problem/solution/metrics

  • Good for smaller features

Agile Epic Template

  • Sprint-based delivery

  • User story mapping

  • Acceptance criteria focus

Feature Brief

  • Lightweight exploration

  • Hypothesis-driven

  • Pre-PRD phase

Prioritization Frameworks

RICE Framework

Score = (Reach × Impact × Confidence) / Effort

Reach: # of users/quarter Impact:

  • Massive = 3x
  • High = 2x
  • Medium = 1x
  • Low = 0.5x
  • Minimal = 0.25x Confidence:
  • High = 100%
  • Medium = 80%
  • Low = 50% Effort: Person-months

Value vs Effort Matrix

     Low Effort    High Effort
     

High QUICK WINS BIG BETS Value [Prioritize] [Strategic]

Low FILL-INS TIME SINKS Value [Maybe] [Avoid]

MoSCoW Method

  • Must Have: Critical for launch

  • Should Have: Important but not critical

  • Could Have: Nice to have

  • Won't Have: Out of scope

Discovery Frameworks

Customer Interview Guide

  1. Context Questions (5 min)

    • Role and responsibilities
    • Current workflow
    • Tools used
  2. Problem Exploration (15 min)

    • Pain points
    • Frequency and impact
    • Current workarounds
  3. Solution Validation (10 min)

    • Reaction to concepts
    • Value perception
    • Willingness to pay
  4. Wrap-up (5 min)

    • Other thoughts
    • Referrals
    • Follow-up permission

Hypothesis Template

We believe that [building this feature] For [these users] Will [achieve this outcome] We'll know we're right when [metric]

Opportunity Solution Tree

Outcome ├── Opportunity 1 │ ├── Solution A │ └── Solution B └── Opportunity 2 ├── Solution C └── Solution D

Metrics & Analytics

North Star Metric Framework

  • Identify Core Value: What's the #1 value to users?

  • Make it Measurable: Quantifiable and trackable

  • Ensure It's Actionable: Teams can influence it

  • Check Leading Indicator: Predicts business success

Funnel Analysis Template

Acquisition → Activation → Retention → Revenue → Referral

Key Metrics:

  • Conversion rate at each step
  • Drop-off points
  • Time between steps
  • Cohort variations

Feature Success Metrics

  • Adoption: % of users using feature

  • Frequency: Usage per user per time period

  • Depth: % of feature capability used

  • Retention: Continued usage over time

  • Satisfaction: NPS/CSAT for feature

Best Practices

Writing Great PRDs

  • Start with the problem, not solution

  • Include clear success metrics upfront

  • Explicitly state what's out of scope

  • Use visuals (wireframes, flows)

  • Keep technical details in appendix

  • Version control changes

Effective Prioritization

  • Mix quick wins with strategic bets

  • Consider opportunity cost

  • Account for dependencies

  • Buffer for unexpected work (20%)

  • Revisit quarterly

  • Communicate decisions clearly

Customer Discovery Tips

  • Ask "why" 5 times

  • Focus on past behavior, not future intentions

  • Avoid leading questions

  • Interview in their environment

  • Look for emotional reactions

  • Validate with data

Stakeholder Management

  • Identify RACI for decisions

  • Regular async updates

  • Demo over documentation

  • Address concerns early

  • Celebrate wins publicly

  • Learn from failures openly

Common Pitfalls to Avoid

  • Solution-First Thinking: Jumping to features before understanding problems

  • Analysis Paralysis: Over-researching without shipping

  • Feature Factory: Shipping features without measuring impact

  • Ignoring Technical Debt: Not allocating time for platform health

  • Stakeholder Surprise: Not communicating early and often

  • Metric Theater: Optimizing vanity metrics over real value

Integration Points

This toolkit integrates with:

  • Analytics: Amplitude, Mixpanel, Google Analytics

  • Roadmapping: ProductBoard, Aha!, Roadmunk

  • Design: Figma, Sketch, Miro

  • Development: Jira, Linear, GitHub

  • Research: Dovetail, UserVoice, Pendo

  • Communication: Slack, Notion, Confluence

Quick Commands Cheat Sheet

Prioritization

python scripts/rice_prioritizer.py features.csv --capacity 15

Interview Analysis

python scripts/customer_interview_analyzer.py interview.txt

Create sample data

python scripts/rice_prioritizer.py sample

JSON outputs for integration

python scripts/rice_prioritizer.py features.csv --output json python scripts/customer_interview_analyzer.py interview.txt json

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