Research latest library documentation, industry best practices, and technical knowledge to automatically generate project-level skills. Use when asked to: (1) Research and create a skill for a library/framework, (2) Build a skill based on architectural patterns, (3) Generate skills from technical research, (4) Create domain-specific technical skills from web research, or (5) Any request combining research with skill creation.
Scanned 9/2/2026
Install to Claude Code
npx -y skills add majiayu000/claude-skill-registry --skill rajvermacas-development-setup-claude-skills-tech-research-skill --agent claude-codeInstalls into .claude/skills of the current project.
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---
name: tech-research-skill-builder
description: >
Research latest library documentation, industry best practices, and technical knowledge
to automatically generate project-level skills. Use when asked to: (1) Research and
create a skill for a library/framework, (2) Build a skill based on architectural patterns,
(3) Generate skills from technical research, (4) Create domain-specific technical skills
from web research, or (5) Any request combining research with skill creation.
---
# Tech Research Skill Builder
Automatically research technical topics and generate comprehensive project-level skills with the latest documentation and best practices.
## Overview
This skill enables automated creation of project-level skills through web research. It:
1. Conducts comprehensive web research on specified technical topics
2. Gathers library documentation, best practices, and code examples
3. Structures findings into an organized skill format
4. Generates a complete, ready-to-use skill package
## Workflow
### Step 1: Parse Request and Plan Research
When a user requests skill creation, identify:
- **Topic**: The library, framework, or technical domain to research
- **Scope**: What aspects to cover (API docs, patterns, best practices)
- **Output location**: Where to create the skill (default: `.claude/skills`)
### Step 2: Execute Comprehensive Research
Conduct research across four categories:
#### 1. Library Documentation
Search for:
- Official documentation (latest version)
- API references and method signatures
- Getting started guides
- Migration guides
**Example searches:**
- `[topic] official documentation 2025`
- `[topic] API reference latest`
- `[topic] getting started guide`
#### 2. Best Practices
Search for:
- Industry standards and conventions
- Production deployment guidelines
- Security best practices
- Performance optimization
**Example searches:**
- `[topic] best practices 2025`
- `[topic] production deployment`
- `[topic] industry standards`
#### 3. Code Examples
Search for:
- Real-world usage patterns
- Common implementations
- Integration examples
- Sample projects
**Example searches:**
- `[topic] code examples`
- `[topic] common patterns`
- `[topic] example project github`
#### 4. Architectural Patterns
Search for:
- Design patterns
- Architecture decisions
- Scalability patterns
- Implementation strategies
**Example searches:**
- `[topic] architecture patterns`
- `[topic] design patterns`
- `[topic] implementation strategies`
**For detailed research strategies**, see [research-workflow.md](references/research-workflow.md).
### Step 3: Structure Research Data
Organize findings into this format:
```json
{
"topic": "Topic name",
"metadata": {
"name": "topic-name",
"description": "Comprehensive description with triggers"
},
"library_docs": [
{
"title": "Doc title",
"summary": "Overview",
"url": "Source URL",
"key_points": ["Point 1", "Point 2"],
"content": "Detailed content"
}
],
"best_practices": [
{
"category": "Category name",
"description": "Practice description",
"guidelines": ["Guideline 1", "Guideline 2"],
"source": "Source URL"
}
],
"code_examples": [
{
"title": "Example title",
"description": "What it demonstrates",
"code": "Code snippet",
"language": "python",
"source": "Source URL"
}
],
"architectural_patterns": [
{
"name": "Pattern name",
"description": "Pattern overview",
"use_cases": ["Use case 1", "Use case 2"],
"trade_offs": "Pros and cons",
"source": "Source URL"
}
]
}
```
Save this structured data to a temporary JSON file for skill generation.
### Step 4: Generate Skill Package
Use the `generate_skill.py` script to create the skill:
```bash
python .claude/skills/tech-research-skill-builder/scripts/generate_skill.py \
/tmp/research_data.json \
.claude/skills
```
This generates:
- **SKILL.md**: Core skill file with frontmatter and navigation
- **references/core-concepts.md**: Fundamental concepts and terminology
- **references/patterns.md**: Implementation patterns and code examples
- **references/best-practices.md**: Production guidelines and recommendations
- **references/api-reference.md**: Detailed API documentation
**For skill generation guidelines**, see [skill-generation-guide.md](references/skill-generation-guide.md).
### Step 5: Validate and Package
After generation:
1. **Validate the skill structure**:
```bash
python /root/.claude/skills/skill-creator/scripts/quick_validate.py \
.claude/skills/[generated-skill-name]
```
2. **Package the skill** (if validation passes):
```bash
python /root/.claude/skills/skill-creator/scripts/package_skill.py \
.claude/skills/[generated-skill-name]
```
3. **Report to user**: Provide the skill location and .skill file path
## Example Usage
### Example 1: Library-Specific Skill
**User request:**
> "Research FastAPI and create a skill for it"
**Workflow:**
1. Parse: Topic = "FastAPI", Scope = comprehensive
2. Research:
- FastAPI official docs (latest version)
- Best practices for production deployment
- Common patterns (authentication, database integration)
- Architecture examples
3. Structure: Organize into JSON format
4. Generate: Create skill at `.claude/skills/fastapi`
5. Validate and package: Create `fastapi.skill` file
### Example 2: Architectural Pattern Skill
**User request:**
> "Create a skill for microservices architecture patterns"
**Workflow:**
1. Parse: Topic = "microservices architecture", Scope = patterns
2. Research:
- Microservices design patterns
- Best practices for service communication
- Code examples (API gateways, service mesh)
- Architecture decisions (monolith vs microservices)
3. Structure: Organize findings
4. Generate: Create skill at `.claude/skills/microservices-architecture`
5. Validate and package
### Example 3: Domain-Specific Technical Skill
**User request:**
> "Research authentication best practices and build a skill"
**Workflow:**
1. Parse: Topic = "authentication", Scope = best practices
2. Research:
- Authentication patterns (OAuth, JWT, sessions)
- Security best practices
- Implementation examples
- Industry standards
3. Structure: Organize by authentication type
4. Generate: Create skill at `.claude/skills/authentication`
5. Validate and package
## Quality Criteria
Generated skills should meet these standards:
- **Current information**: From 2025 or latest version
- **Comprehensive coverage**: All major aspects of the topic
- **Practical examples**: Real-world code and patterns
- **Clear organization**: Logical structure with navigation
- **Valid structure**: Passes skill validation
- **Proper triggers**: Description includes when to use
## Research Depth Guidelines
Adjust research depth based on topic complexity:
**Quick (20-30 min)**: Simple libraries, basic patterns
- 3-5 sources per category
- Focus on official docs
- Basic examples
**Medium (1-2 hours)**: Standard frameworks, common patterns
- 10-15 sources per category
- Include community resources
- Multiple examples
**Deep (3-4 hours)**: Complex systems, architectural patterns
- 20+ sources per category
- Comprehensive coverage
- Edge cases and advanced topics
## Troubleshooting
### Research yields limited results
- Broaden search terms
- Include alternative names for the technology
- Search for related technologies/patterns
### Generated skill has gaps
- Conduct targeted follow-up research
- Manually add missing sections
- Update research data and regenerate
### Validation fails
- Check SKILL.md frontmatter format
- Ensure description is comprehensive
- Verify all reference files are linked
## Advanced Usage
### Custom Research Scope
Modify the research categories in `scripts/research_and_build_skill.py` to focus on specific aspects:
```python
def collect_research_requirements(self) -> Dict[str, List[str]]:
return {
"security_practices": [...], # Custom category
"performance_optimization": [...],
# Add or remove categories as needed
}
```
### Multiple Topic Skills
For skills covering multiple related topics:
1. Research each topic separately
2. Merge research data
3. Organize references by topic
4. Generate unified skill
### Skill Updates
To update an existing skill with new research:
1. Conduct fresh research
2. Merge with existing content
3. Regenerate skill
4. Replace old skill with updated version
Is this your skill, or is something wrong with this listing? Request removal or report an issue. Author removals are honored within 72 hours.
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