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Manage — App Store Optimization (ASO) toolkit for researching keywords, analyzing competitor rankings, generating metadata suggestions, and improving app visibility on Apple App Store and G

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SKILL.md
---
name: "app-store-optimization"
description: "Manage — App Store Optimization (ASO) toolkit for researching keywords, analyzing competitor rankings, generating metadata suggestions, and improving app visibility on Apple App Store and G"
triggers:
  - ASO
  - app store optimization
  - app store ranking
  - app keywords
  - app metadata
  - play store optimization
  - app store listing
  - improve app rankings
  - app visibility
  - app store SEO
  - mobile app marketing
  - app conversion rate
executor: HYBRID
skill_id: business.marketing-skill.app-store-optimization
status: ADOPTED
security: {level: standard, pii: false, approval_required: false}
anchors:
  - business
  - data
  - research
tier: 2
input_schema:
  - name: code_or_task
    type: string
    description: "Code snippet, script, or task description to process"
    required: true
output_schema:
  - name: result
    type: object
    description: "Result from the automated action"
  - name: status
    type: string
    description: "Execution status: success | partial | failure"
---

# App Store Optimization (ASO)

---

## Keyword Research Workflow

Discover and evaluate keywords that drive app store visibility.

### Workflow: Conduct Keyword Research

1. Define target audience and core app functions:
   - Primary use case (what problem does the app solve)
   - Target user demographics
   - Competitive category
2. Generate seed keywords from:
   - App features and benefits
   - User language (not developer terminology)
   - App store autocomplete suggestions
3. Expand keyword list using:
   - Modifiers (free, best, simple)
   - Actions (create, track, organize)
   - Audiences (for students, for teams, for business)
4. Evaluate each keyword:
   - Search volume (estimated monthly searches)
   - Competition (number and quality of ranking apps)
   - Relevance (alignment with app function)
5. Score and prioritize keywords:
   - Primary: Title and keyword field (iOS)
   - Secondary: Subtitle and short description
   - Tertiary: Full description only
6. Map keywords to metadata locations
7. Document keyword strategy for tracking
8. **Validation:** Keywords scored; placement mapped; no competitor brand names included; no plurals in iOS keyword field

### Keyword Evaluation Criteria

| Factor | Weight | High Score Indicators |
|--------|--------|----------------------|
| Relevance | 35% | Describes core app function |
| Volume | 25% | 10,000+ monthly searches |
| Competition | 25% | Top 10 apps have <4.5 avg rating |
| Conversion | 15% | Transactional intent ("best X app") |

### Keyword Placement Priority

| Location | Search Weight |
|----------|---------------|
| App Title | Highest |
| Subtitle (iOS) | High |
| Keyword Field (iOS) | High |
| Short Description (Android) | High |
| Full Description | Medium |

See: [references/keyword-research-guide.md](references/keyword-research-guide.md)

---

## Metadata Optimization Workflow

Optimize app store listing elements for search ranking and conversion.

### Workflow: Optimize App Metadata

1. Audit current metadata against platform limits:
   - Title character count and keyword presence
   - Subtitle/short description usage
   - Keyword field efficiency (iOS)
   - Description keyword density
2. Optimize title following formula:
   ```
   [Brand Name] - [Primary Keyword] [Secondary Keyword]
   ```
3. Write subtitle (iOS) or short description (Android):
   - Focus on primary benefit
   - Include secondary keyword
   - Use action verbs
4. Optimize keyword field (iOS only):
   - Remove duplicates from title
   - Remove plurals (Apple indexes both forms)
   - No spaces after commas
   - Prioritize by score
5. Rewrite full description:
   - Hook paragraph with value proposition
   - Feature bullets with keywords
   - Social proof section
   - Call to action
6. Validate character counts for each field
7. Calculate keyword density (target 2-3% primary)
8. **Validation:** All fields within character limits; primary keyword in title; no keyword stuffing (>5%); natural language preserved

### Platform Character Limits

| Field | Apple App Store | Google Play Store |
|-------|-----------------|-------------------|
| Title | 30 characters | 50 characters |
| Subtitle | 30 characters | N/A |
| Short Description | N/A | 80 characters |
| Keywords | 100 characters | N/A |
| Promotional Text | 170 characters | N/A |
| Full Description | 4,000 characters | 4,000 characters |
| What's New | 4,000 characters | 500 characters |

### Description Structure

```
PARAGRAPH 1: Hook (50-100 words)
├── Address user pain point
├── State main value proposition
└── Include primary keyword

PARAGRAPH 2-3: Features (100-150 words)
├── Top 5 features with benefits
├── Bullet points for scanability
└── Secondary keywords naturally integrated

PARAGRAPH 4: Social Proof (50-75 words)
├── Download count or rating
├── Press mentions or awards
└── Summary of user testimonials

PARAGRAPH 5: Call to Action (25-50 words)
├── Clear next step
└── Reassurance (free trial, no signup)
```

See: [references/platform-requirements.md](references/platform-requirements.md)

---

## Competitor Analysis Workflow

Analyze top competitors to identify keyword gaps and positioning opportunities.

### Workflow: Analyze Competitor ASO Strategy

1. Identify top 10 competitors:
   - Direct competitors (same core function)
   - Indirect competitors (overlapping audience)
   - Category leaders (top downloads)
2. Extract competitor keywords from:
   - App titles and subtitles
   - First 100 words of descriptions
   - Visible metadata patterns
3. Build competitor keyword matrix:
   - Map which keywords each competitor targets
   - Calculate coverage percentage per keyword
4. Identify keyword gaps:
   - Keywords with <40% competitor coverage
   - High volume terms competitors miss
   - Long-tail opportunities
5. Analyze competitor visual assets:
   - Icon design patterns
   - Screenshot messaging and style
   - Video presence and quality
6. Compare ratings and review patterns:
   - Average rating by competitor
   - Common praise themes
   - Common complaint themes
7. Document positioning opportunities
8. **Validation:** 10+ competitors analyzed; keyword matrix complete; gaps identified with volume estimates; visual audit documented

### Competitor Analysis Matrix

| Analysis Area | Data Points |
|---------------|-------------|
| Keywords | Title keywords, description frequency |
| Metadata | Character utilization, keyword density |
| Visuals | Icon style, screenshot count/style |
| Ratings | Average rating, total count, velocity |
| Reviews | Top praise, top complaints |

### Gap Analysis Template

| Opportunity Type | Example | Action |
|------------------|---------|--------|
| Keyword gap | "habit tracker" (40% coverage) | Add to keyword field |
| Feature gap | Competitor lacks widget | Highlight in screenshots |
| Visual gap | No videos in top 5 | Create app preview |
| Messaging gap | None mention "free" | Test free positioning |

---

## App Launch Workflow

Execute a structured launch for maximum initial visibility.

### Workflow: Launch App to Stores

1. Complete pre-launch preparation (4 weeks before):
   - Finalize keywords and metadata
   - Prepare all visual assets
   - Set up analytics (Firebase, Mixpanel)
   - Build press kit and media list
2. Submit for review (2 weeks before):
   - Complete all store requirements
   - Verify compliance with guidelines
   - Prepare launch communications
3. Configure post-launch systems:
   - Set up review monitoring
   - Prepare response templates
   - Configure rating prompt timing
4. Execute launch day:
   - Verify app is live in both stores
   - Announce across all channels
   - Begin review response cycle
5. Monitor initial performance (days 1-7):
   - Track download velocity hourly
   - Monitor reviews and respond within 24 hours
   - Document any issues for quick fixes
6. Conduct 7-day retrospective:
   - Compare performance to projections
   - Identify quick optimization wins
   - Plan first metadata update
7. Schedule first update (2 weeks post-launch)
8. **Validation:** App live in stores; analytics tracking; review responses within 24h; download velocity documented; first update scheduled

### Pre-Launch Checklist

| Category | Items |
|----------|-------|
| Metadata | Title, subtitle, description, keywords |
| Visual Assets | Icon, screenshots (all sizes), video |
| Compliance | Age rating, privacy policy, content rights |
| Technical | App binary, signing certificates |
| Analytics | SDK integration, event tracking |
| Marketing | Press kit, social content, email ready |

### Launch Timing Considerations

| Factor | Recommendation |
|--------|----------------|
| Day of week | Tuesday-Wednesday (avoid weekends) |
| Time of day | Morning in target market timezone |
| Seasonal | Align with relevant category seasons |
| Competition | Avoid major competitor launch dates |

See: [references/aso-best-practices.md](references/aso-best-practices.md)

---

## A/B Testing Workflow

Test metadata and visual elements to improve conversion rates.

### Workflow: Run A/B Test

1. Select test element (prioritize by impact):
   - Icon (highest impact)
   - Screenshot 1 (high impact)
   - Title (high impact)
   - Short description (medium impact)
2. Form hypothesis:
   ```
   If we [change], then [metric] will [improve/increase] by [amount]
   because [rationale].
   ```
3. Create variants:
   - Control: Current version
   - Treatment: Single variable change
4. Calculate required sample size:
   - Baseline conversion rate
   - Minimum detectable effect (usually 5%)
   - Statistical significance (95%)
5. Launch test:
   - Apple: Use Product Page Optimization
   - Android: Use Store Listing Experiments
6. Run test for minimum duration:
   - At least 7 days
   - Until statistical significance reached
7. Analyze results:
   - Compare conversion rates
   - Check statistical significance
   - Document learnings
8. **Validation:** Single variable tested; sample size sufficient; significance reached (95%); results documented; winner implemented

### A/B Test Prioritization

| Element | Conversion Impact | Test Complexity |
|---------|-------------------|-----------------|
| App Icon | 10-25% lift possible | Medium (design needed) |
| Screenshot 1 | 15-35% lift possible | Medium |
| Title | 5-15% lift possible | Low |
| Short Description | 5-10% lift possible | Low |
| Video | 10-20% lift possible | High |

### Sample Size Quick Reference

| Baseline CVR | Impressions Needed (per variant) |
|--------------|----------------------------------|
| 1% | 31,000 |
| 2% | 15,500 |
| 5% | 6,200 |
| 10% | 3,100 |

### Test Documentation Template

```
TEST ID: ASO-2025-001
ELEMENT: App Icon
HYPOTHESIS: A bolder color icon will increase conversion by 10%
START DATE: [Date]
END DATE: [Date]

RESULTS:
├── Control CVR: 4.2%
├── Treatment CVR: 4.8%
├── Lift: +14.3%
├── Significance: 97%
└── Decision: Implement treatment

LEARNINGS:
- Bold colors outperform muted tones in this category
- Apply to screenshot backgrounds for next test
```

---

## Before/After Examples

### Title Optimization

**Productivity App:**

| Version | Title | Analysis |
|---------|-------|----------|
| Before | "MyTasks" | No keywords, brand only (8 chars) |
| After | "MyTasks - Todo List & Planner" | Primary + secondary keywords (29 chars) |

**Fitness App:**

| Version | Title | Analysis |
|---------|-------|----------|
| Before | "FitTrack Pro" | Generic modifier (12 chars) |
| After | "FitTrack: Workout Log & Gym" | Category keywords (27 chars) |

### Subtitle Optimization (iOS)

| Version | Subtitle | Analysis |
|---------|----------|----------|
| Before | "Get Things Done" | Vague, no keywords |
| After | "Daily Task Manager & Planner" | Two keywords, benefit clear |

### Keyword Field Optimization (iOS)

**Before (Inefficient - 89 chars, 8 keywords):**
```
task manager, todo list, productivity app, daily planner, reminder app
```

**After (Optimized - 97 chars, 14 keywords):**
```
task,todo,checklist,reminder,organize,daily,planner,schedule,deadline,goals,habit,widget,sync,team
```

**Improvements:**
- Removed spaces after commas (+8 chars)
- Removed duplicates (task manager → task)
- Removed plurals (reminders → reminder)
- Removed words in title
- Added more relevant keywords

### Description Opening

**Before:**
```
MyTasks is a comprehensive task management solution designed
to help busy professionals organize their daily activities
and boost productivity.
```

**After:**
```
Forget missed deadlines. MyTasks keeps every task, reminder,
and project in one place—so you focus on doing, not remembering.
Trusted by 500,000+ professionals.
```

**Improvements:**
- Leads with user pain point
- Specific benefit (not generic "boost productivity")
- Social proof included
- Keywords natural, not stuffed

### Screenshot Caption Evolution

| Version | Caption | Issue |
|---------|---------|-------|
| Before | "Task List Feature" | Feature-focused, passive |
| Better | "Create Task Lists" | Action verb, but still feature |
| Best | "Never Miss a Deadline" | Benefit-focused, emotional |

---

## Tools and References

### Scripts

| Script | Purpose | Usage |
|--------|---------|-------|
| [keyword_analyzer.py](scripts/keyword_analyzer.py) | Analyze keywords for volume and competition | `python keyword_analyzer.py --keywords "todo,task,planner"` |
| [metadata_optimizer.py](scripts/metadata_optimizer.py) | Validate metadata character limits and density | `python metadata_optimizer.py --platform ios --title "App Title"` |
| [competitor_analyzer.py](scripts/competitor_analyzer.py) | Extract and compare competitor keywords | `python competitor_analyzer.py --competitors "App1,App2,App3"` |
| [aso_scorer.py](scripts/aso_scorer.py) | Calculate overall ASO health score | `python aso_scorer.py --app-id com.example.app` |
| [ab_test_planner.py](scripts/ab_test_planner.py) | Plan tests and calculate sample sizes | `python ab_test_planner.py --cvr 0.05 --lift 0.10` |
| [review_analyzer.py](scripts/review_analyzer.py) | Analyze review sentiment and themes | `python review_analyzer.py --app-id com.example.app` |
| [launch_checklist.py](scripts/launch_checklist.py) | Generate platform-specific launch checklists | `python launch_checklist.py --platform ios` |
| [localization_helper.py](scripts/localization_helper.py) | Manage multi-language metadata | `python localization_helper.py --locales "en,es,de,ja"` |

### References

| Document | Content |
|----------|---------|
| [platform-requirements.md](references/platform-requirements.md) | iOS and Android metadata specs, visual asset requirements |
| [aso-best-practices.md](references/aso-best-practices.md) | Optimization strategies, rating management, launch tactics |
| [keyword-research-guide.md](references/keyword-research-guide.md) | Research methodology, evaluation framework, tracking |

### Assets

| Template | Purpose |
|----------|---------|
| [aso-audit-template.md](assets/aso-audit-template.md) | Structured audit checklist for app store listings |

---

## Platform Notes

| Platform / Constraint | Behavior / Impact |
|-----------------------|-------------------|
| iOS keyword changes | Require app submission |
| iOS promotional text | Editable without an app update |
| Android metadata changes | Index in 1-2 hours |
| Android keyword field | None — use description instead |
| Keyword volume data | Estimates only; no official source |
| Competitor data | Public listings only |

**When not to use this skill:** web apps (use web SEO), enterprise/internal apps, TestFlight-only betas, or paid advertising strategy.

---

## Related Skills

| Skill | Integration Point |
|-------|-------------------|
| [content-creator](../content-creator/) | App description copywriting |
| [marketing-demand-acquisition](../marketing-demand-acquisition/) | Launch promotion campaigns |
| [marketing-strategy-pmm](../marketing-strategy-pmm/) | Go-to-market planning |

## Proactive Triggers

- **No keyword optimization in title** → App title is the #1 ranking factor. Include top keyword.
- **Screenshots don't show value** → Screenshots should tell a story, not show UI.
- **No ratings strategy** → Below 4.0 stars kills conversion. Implement in-app rating prompts.
- **Description keyword-stuffed** → Natural language with keywords beats keyword stuffing.

## Output Artifacts

| When you ask for... | You get... |
|---------------------|------------|
| "ASO audit" | Full app store listing audit with prioritized fixes |
| "Keyword research" | Keyword list with search volume and difficulty scores |
| "Optimize my listing" | Rewritten title, subtitle, description, keyword field |

## Communication

All output passes quality verification:
- Self-verify: source attribution, assumption audit, confidence scoring
- Output format: Bottom Line → What (with confidence) → Why → How to Act
- Results only. Every finding tagged: 🟢 verified, 🟡 medium, 🔴 assumed.

---

## Why This Skill Exists

Manage — App Store Optimization (ASO) toolkit for researching keywords, analyzing competitor rankings, generating metadata suggestions, and improving app visibility on Apple App Store and G

<!-- SR_40: auto-generated from frontmatter `purpose`/`description` (OPP-Phase3). Expand with domain-specific rationale. -->

## When to Use

Use this skill when the task requires app store optimization capabilities.

<!-- SR_40: auto-generated from frontmatter `when`/`description` (OPP-Phase3). -->

## What If Fails

If this skill fails to produce the expected output: (1) verify input completeness, (2) retry with more specific context, (3) fall back to the parent workflow without this skill.

<!-- SR_40: auto-generated from frontmatter `what_if_fails` (OPP-Phase3). -->

Files in this skill

  • HOW_TO_USE.md10 KB
  • README.md14.6 KB
  • SKILL.md17.5 KB
  • assets/aso-audit-template.md4.8 KB
  • expected_output.json5.4 KB
  • references/aso-best-practices.md12.2 KB
  • references/keyword-research-guide.md11.6 KB
  • references/platform-requirements.md9.4 KB
  • sample_input.json723 B
  • scripts/ab_test_planner.py22.7 KB
  • scripts/aso_scorer.py18.9 KB
  • scripts/competitor_analyzer.py21.3 KB
  • scripts/keyword_analyzer.py13.2 KB
  • scripts/launch_checklist.py28.7 KB
  • scripts/localization_helper.py22 KB
  • scripts/metadata_optimizer.py20.8 KB
  • scripts/review_analyzer.py25.4 KB

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