Tufte
aref-vc/tufte-claude-skill
Apply Edward Tufte's principles to any data visualization, chart, dashboard, or infographic.
Comprehensive Power BI data model design review prompt for evaluating model architecture, relationships, and optimization opportunities.
$ npx skills add github/awesome-copilot --skill power-bi-model-design-review -a claude-codeProject install by default; add -g for ~/.claude/skills/.
$ gh skill install github/awesome-copilot power-bi-model-design-review --agent claude-codeProject scope by default; add --scope user for a personal install. Needs GitHub CLI 2.90.0 or later (public preview).
$ git clone --depth 1 https://github.com/github/awesome-copilot.git skills-src && mkdir -p .claude/skills && cp -r skills-src/skills/power-bi-model-design-review .claude/skills/power-bi-model-design-review && rm -rf skills-srcUse ~/.claude/skills/ instead of .claude/skills for a personal install. The folder must contain SKILL.md.
Claude Code skills documentation · loads skills from .claude/skills/
Install the "power-bi-model-design-review" agent skill from https://github.com/github/awesome-copilot/tree/main/skills/power-bi-model-design-review into .claude/skills/power-bi-model-design-review/ in this project. Copy the whole folder (SKILL.md and every file beside it), keep the folder name "power-bi-model-design-review", then confirm the skill loads.Claude Code copies the folder itself, the same result as the manual copy. Check what it changed before you commit it.
$skill-installer install https://github.com/github/awesome-copilot/tree/main/skills/power-bi-model-design-reviewType this inside Codex. $skill-installer <name> installs a curated skill from openai/skills. The installer writes to $CODEX_HOME/skills (default ~/.codex/skills). Restart Codex if the skill does not show up.
$ npx skills add github/awesome-copilot --skill power-bi-model-design-review -a codexProject install goes to .agents/skills/; add -g for ~/.codex/skills/.
$ gh skill install github/awesome-copilot power-bi-model-design-review --agent codexProject scope by default (.agents/skills/); add --scope user for a personal install.
$ git clone --depth 1 https://github.com/github/awesome-copilot.git skills-src && mkdir -p .agents/skills && cp -r skills-src/skills/power-bi-model-design-review .agents/skills/power-bi-model-design-review && rm -rf skills-srcUse ~/.agents/skills/ instead of .agents/skills for a personal install.
Codex skills documentation · loads skills from .agents/skills/
Install the "power-bi-model-design-review" agent skill from https://github.com/github/awesome-copilot/tree/main/skills/power-bi-model-design-review into .agents/skills/power-bi-model-design-review/ in this project. Copy the whole folder (SKILL.md and every file beside it), keep the folder name "power-bi-model-design-review", then confirm the skill loads.Codex copies the folder itself, the same result as the manual copy. Check what it changed before you commit it.
$ npx skills add github/awesome-copilot --skill power-bi-model-design-review -a cursorProject install goes to .agents/skills/; add -g for ~/.cursor/skills/.
$ gh skill install github/awesome-copilot power-bi-model-design-review --agent cursorProject scope by default (.agents/skills/); add --scope user for a personal install.
$ git clone --depth 1 https://github.com/github/awesome-copilot.git skills-src && mkdir -p .cursor/skills && cp -r skills-src/skills/power-bi-model-design-review .cursor/skills/power-bi-model-design-review && rm -rf skills-srcUse ~/.cursor/skills/ instead of .cursor/skills for a personal install.
Cursor skills documentation · loads skills from .cursor/skills/, .agents/skills/, .claude/skills/, .codex/skills/
Install the "power-bi-model-design-review" agent skill from https://github.com/github/awesome-copilot/tree/main/skills/power-bi-model-design-review into .cursor/skills/power-bi-model-design-review/ in this project. Copy the whole folder (SKILL.md and every file beside it), keep the folder name "power-bi-model-design-review", then confirm the skill loads.Cursor copies the folder itself, the same result as the manual copy. Check what it changed before you commit it.
$ gemini skills install https://github.com/github/awesome-copilot.git --path skills/power-bi-model-design-review--scope user (default) or --scope workspace; --path is the subfolder of the repo that holds the skill; --consent skips the security confirmation prompt.
$ npx skills add github/awesome-copilot --skill power-bi-model-design-review -a gemini-cliProject install goes to .agents/skills/; add -g for ~/.gemini/skills/.
$ gh skill install github/awesome-copilot power-bi-model-design-review --agent gemini-cliProject scope by default (.agents/skills/); add --scope user for a personal install.
$ git clone --depth 1 https://github.com/github/awesome-copilot.git skills-src && mkdir -p .gemini/skills && cp -r skills-src/skills/power-bi-model-design-review .gemini/skills/power-bi-model-design-review && rm -rf skills-srcUse ~/.gemini/skills/ instead of .gemini/skills for a personal install, then run /skills reload.
Gemini CLI skills documentation · loads skills from .gemini/skills/, .agents/skills/
Install the "power-bi-model-design-review" agent skill from https://github.com/github/awesome-copilot/tree/main/skills/power-bi-model-design-review into .gemini/skills/power-bi-model-design-review/ in this project. Copy the whole folder (SKILL.md and every file beside it), keep the folder name "power-bi-model-design-review", then confirm the skill loads.Gemini CLI copies the folder itself, the same result as the manual copy. Check what it changed before you commit it.
$ gh skill install github/awesome-copilot power-bi-model-design-reviewInstalls for Copilot at project scope by default; add --scope user for a personal install. Preview a skill first with gh skill preview. Needs GitHub CLI 2.90.0 or later (public preview).
$ npx skills add github/awesome-copilot --skill power-bi-model-design-review -a github-copilotProject install goes to .agents/skills/; add -g for ~/.copilot/skills/.
$ git clone --depth 1 https://github.com/github/awesome-copilot.git skills-src && mkdir -p .github/skills && cp -r skills-src/skills/power-bi-model-design-review .github/skills/power-bi-model-design-review && rm -rf skills-srcUse ~/.copilot/skills/ instead of .github/skills for a personal install. Commit .github/skills so cloud agent and code review can use it.
GitHub Copilot skills documentation · loads skills from .github/skills/, .claude/skills/, .agents/skills/
Install the "power-bi-model-design-review" agent skill from https://github.com/github/awesome-copilot/tree/main/skills/power-bi-model-design-review into .github/skills/power-bi-model-design-review/ in this project. Copy the whole folder (SKILL.md and every file beside it), keep the folder name "power-bi-model-design-review", then confirm the skill loads.GitHub Copilot copies the folder itself, the same result as the manual copy. Check what it changed before you commit it.
$ npx skills add github/awesome-copilot --skill power-bi-model-design-review -a opencodeOpenCode documents no install command of its own. Project install goes to .agents/skills/; add -g for ~/.config/opencode/skills/.
$ gh skill install github/awesome-copilot power-bi-model-design-review --agent opencodeProject scope by default (.agents/skills/); add --scope user for a personal install.
$ git clone --depth 1 https://github.com/github/awesome-copilot.git skills-src && mkdir -p .opencode/skills && cp -r skills-src/skills/power-bi-model-design-review .opencode/skills/power-bi-model-design-review && rm -rf skills-srcUse ~/.config/opencode/skills/ instead of .opencode/skills for a personal install.
OpenCode skills documentation · loads skills from .opencode/skills/, .claude/skills/, .agents/skills/
Install the "power-bi-model-design-review" agent skill from https://github.com/github/awesome-copilot/tree/main/skills/power-bi-model-design-review into .opencode/skills/power-bi-model-design-review/ in this project. Copy the whole folder (SKILL.md and every file beside it), keep the folder name "power-bi-model-design-review", then confirm the skill loads.OpenCode copies the folder itself, the same result as the manual copy. Check what it changed before you commit it.
power-bi-model-design-reviewComprehensive Power BI data model design review prompt for evaluating model architecture, relationships, and optimization opportunities.
Power Bi Model Design Review is an agent skill from github/awesome-copilot, published by the product's own GitHub organization. Comprehensive Power BI data model design review prompt for evaluating model architecture, relationships, and optimization opportunities.
Its SKILL.md is about 2.8k tokens, which your agent loads only when the skill is triggered. It is a single SKILL.md file with no bundled scripts.
It sits in Data & Analytics, covering Design review and critique and Database schema design. It works with Power BI. The repository describes itself as: Community-contributed instructions, agents, skills, and configurations to help you make the most of GitHub Copilot. The licence is MIT.
3 steps, taken from the step headings in SKILL.md.
Read from SKILL.md and the folder at commit 7cce7cf. It shows what the files ask for, not the result of running them.
Pre-approves nothing: there is no allowed-tools line, so your agent's usual permission prompts apply.
From allowed-tools in the SKILL.md frontmatter.
No scripts in the folder and no shell commands in SKILL.md.
From the folder's file list and the shell code blocks in SKILL.md.
No URLs in SKILL.md.
From URLs in SKILL.md, links to its own repository left out.
Names no API keys, tokens, secrets or passwords.
From names ending in _API_KEY, _TOKEN, _SECRET, _KEY or _PASSWORD in SKILL.md.
Power Bi Model Design Review loads about 2.8k tokens when it runs. Until then it costs about 41 tokens; SKILL.md has 216 words of instructions outside code blocks.
Estimates: characters ÷ 4, the usual rule of thumb; real counts depend on the model's tokenizer. Scripts and assets cost tokens only if the agent reads them.
The automated check found no risky patterns in SKILL.md.
Automated static check — not a guarantee. Review scripts before installing. It scans the text of SKILL.md for risky patterns (piping downloads into a shell, reading credential files, hidden Unicode, destructive commands); files beside SKILL.md are not scanned.
The full file from github/awesome-copilot at commit 7cce7cf, republished under its MIT licence (© github). 216 words, ~2,782 tokens.
.claude/skills/power-bi-model-design-review/SKILL.md (or your agent's skills folder).You are a Power BI data modeling expert conducting comprehensive design reviews. Your role is to evaluate model architecture, identify optimization opportunities, and ensure adherence to best practices for scalable, maintainable, and performant data models.
When reviewing a Power BI data model, conduct analysis across these key dimensions:
Star Schema Compliance:
□ Clear separation of fact and dimension tables
□ Proper grain consistency within fact tables
□ Dimension tables contain descriptive attributes
□ Minimal snowflaking (justified when present)
□ Appropriate use of bridge tables for many-to-many
Table Design Quality:
□ Meaningful table and column names
□ Appropriate data types for all columns
□ Proper primary and foreign key relationships
□ Consistent naming conventions
□ Adequate documentation and descriptionsRelationship Quality Assessment:
□ Correct cardinality settings (1:*, *:*, 1:1)
□ Appropriate filter directions (single vs. bidirectional)
□ Referential integrity settings optimized
□ Hidden foreign key columns from report view
□ Minimal circular relationship paths
Performance Considerations:
□ Integer keys preferred over text keys
□ Low-cardinality relationship columns
□ Proper handling of missing/orphaned records
□ Efficient cross-filtering design
□ Minimal many-to-many relationshipsStorage Mode Optimization:
□ Import mode used appropriately for small-medium datasets
□ DirectQuery implemented properly for large/real-time data
□ Composite models designed with clear strategy
□ Dual storage mode used effectively for dimensions
□ Hybrid mode applied appropriately for fact tables
Performance Alignment:
□ Storage modes match performance requirements
□ Data freshness needs properly addressed
□ Cross-source relationships optimized
□ Aggregation strategies implemented where beneficialEvaluate Model Structure:
Fact Table Analysis:
- Grain definition and consistency
- Appropriate measure columns
- Foreign key completeness
- Size and growth projections
- Historical data management
Dimension Table Analysis:
- Attribute completeness and quality
- Hierarchy design and implementation
- Slowly changing dimension handling
- Surrogate vs. natural key usage
- Reference data management
Relationship Network Analysis:
- Star vs. snowflake patterns
- Relationship complexity assessment
- Filter propagation paths
- Cross-filtering impact evaluationData Quality Assessment:
Completeness:
□ All required business entities represented
□ No missing critical relationships
□ Comprehensive attribute coverage
□ Proper handling of NULL values
Consistency:
□ Consistent data types across related columns
□ Standardized naming conventions
□ Uniform formatting and encoding
□ Consistent grain across fact tables
Accuracy:
□ Business rule implementation validation
□ Referential integrity verification
□ Data transformation accuracy
□ Calculated field correctnessSize Optimization Assessment:
Data Reduction Opportunities:
- Unnecessary columns identification
- Redundant data elimination
- Historical data archiving needs
- Pre-aggregation possibilities
Compression Efficiency:
- Data type optimization opportunities
- High-cardinality column assessment
- Calculated column vs. measure usage
- Storage mode selection validation
Scalability Considerations:
- Growth projection accommodation
- Refresh performance requirements
- Query performance expectations
- Concurrent user capacity planningPerformance Pattern Review:
DAX Optimization:
- Measure efficiency and complexity
- Variable usage in calculations
- Context transition optimization
- Iterator function performance
- Error handling implementation
Relationship Performance:
- Join efficiency assessment
- Cross-filtering impact analysis
- Many-to-many performance implications
- Bidirectional relationship necessity
Indexing and Aggregation:
- DirectQuery indexing requirements
- Aggregation table opportunities
- Composite model optimization
- Cache utilization strategiesMaintainability Factors:
Documentation Quality:
□ Table and column descriptions
□ Business rule documentation
□ Data source documentation
□ Relationship justification
□ Measure calculation explanations
Code Organization:
□ Logical grouping of related measures
□ Consistent naming conventions
□ Modular design principles
□ Clear separation of concerns
□ Version control considerations
Change Management:
□ Impact assessment procedures
□ Testing and validation processes
□ Deployment and rollback strategies
□ User communication plansSecurity Implementation:
Row-Level Security:
□ RLS design and implementation
□ Performance impact assessment
□ Testing and validation completeness
□ Role-based access control
□ Dynamic security patterns
Data Protection:
□ Sensitive data handling
□ Compliance requirements adherence
□ Audit trail implementation
□ Data retention policies
□ Privacy protection measuresData Model Review Summary
Model Overview:
- Model name and purpose
- Business domain and scope
- Current size and complexity metrics
- Primary use cases and user groups
Key Findings:
- Critical issues requiring immediate attention
- Performance optimization opportunities
- Best practice compliance assessment
- Security and governance status
Priority Recommendations:
1. High Priority: [Critical issues impacting functionality/performance]
2. Medium Priority: [Optimization opportunities with significant benefit]
3. Low Priority: [Best practice improvements and future considerations]
Implementation Roadmap:
- Quick wins (1-2 weeks)
- Short-term improvements (1-3 months)
- Long-term strategic enhancements (3-12 months)1. Table Design Analysis
□ Fact table evaluation and recommendations
□ Dimension table optimization opportunities
□ Relationship design assessment
□ Naming convention compliance
□ Data type optimization suggestions
2. Performance Architecture
□ Storage mode strategy evaluation
□ Size optimization recommendations
□ Query performance enhancement opportunities
□ Scalability assessment and planning
□ Aggregation and caching strategies
3. Best Practices Compliance
□ Star schema implementation quality
□ Industry standard adherence
□ Microsoft guidance alignment
□ Documentation completeness
□ Maintenance readinessFor Each Issue Identified:
Issue Description:
- Clear explanation of the problem
- Impact assessment (performance, maintenance, accuracy)
- Risk level and urgency classification
Recommended Solution:
- Specific steps for resolution
- Alternative approaches when applicable
- Expected benefits and improvements
- Implementation complexity assessment
- Required resources and timeline
Implementation Guidance:
- Step-by-step instructions
- Code examples where appropriate
- Testing and validation procedures
- Rollback considerations
- Success criteria definition□ Model follows star schema principles
□ Appropriate storage modes selected
□ Relationships have correct cardinality
□ Foreign keys are hidden from report view
□ Date table is properly implemented
□ No circular relationships exist
□ Measure calculations use variables appropriately
□ No unnecessary calculated columns in large tables
□ Table and column names follow conventions
□ Basic documentation is presentArchitecture & Design:
□ Complete schema architecture analysis
□ Detailed relationship design review
□ Storage mode strategy evaluation
□ Performance optimization assessment
□ Scalability planning review
Data Quality & Integrity:
□ Comprehensive data quality assessment
□ Referential integrity validation
□ Business rule implementation review
□ Error handling evaluation
□ Data transformation accuracy check
Performance & Optimization:
□ Query performance analysis
□ DAX optimization opportunities
□ Model size optimization review
□ Refresh performance assessment
□ Concurrent usage capacity planning
Governance & Security:
□ Security implementation review
□ Documentation quality assessment
□ Maintainability evaluation
□ Compliance requirements check
□ Change management readinessFocus Areas:
- Functionality completeness
- Performance validation
- Security implementation
- User acceptance criteria
- Go-live readiness assessment
Deliverables:
- Go/No-go recommendation
- Critical issue resolution plan
- Performance benchmark validation
- User training requirements
- Post-launch monitoring planFocus Areas:
- Performance bottleneck identification
- Optimization opportunity assessment
- Capacity planning validation
- Scalability improvement recommendations
- Monitoring and alerting setup
Deliverables:
- Performance improvement roadmap
- Specific optimization recommendations
- Expected performance gains quantification
- Implementation priority matrix
- Success measurement criteriaFocus Areas:
- Current state vs. best practices gap analysis
- Technology upgrade opportunities
- Architecture improvement possibilities
- Process optimization recommendations
- Skills and training requirements
Deliverables:
- Modernization strategy and roadmap
- Cost-benefit analysis of improvements
- Risk assessment and mitigation strategies
- Implementation timeline and resource requirements
- Change management recommendationsUsage Instructions: To request a data model review, provide:
I'll conduct a thorough review following this framework and provide specific, actionable recommendations tailored to your model and requirements.
© github, MIT. Rendered from Markdown: HTML in the file is shown as text, images as links, and headings moved down two levels. Raw file
Just SKILL.md in skills/power-bi-model-design-review of github/awesome-copilot.
Open the folder on GitHubat commit 7cce7cf
We found 1 copy of this SKILL.md (exact, near-identical or edited) in other folders, from 1 other GitHub owner. This page covers the copy in github/awesome-copilot, which our catalogue first saw on October 7, 2026.
Power Bi Model Design Review next to the 5 skills that share the most tags, products or categories with it. Stars are the repository's; “used in” counts other GitHub owners with a copy.
| Skill | Stars | Used in | Tokens | Auto-check | Licence | Repo updated |
|---|---|---|---|---|---|---|
| Power Bi Model Design Review this skillgithub/awesome-copilot | 40k | 1 repos | ~2.8k | Automated safety check: Pass | MIT | |
| Tuftearef-vc/tufte-claude-skill | 307 | — | ~1.3k | Automated safety check: Pass | MIT | |
| Power Bi AI ReadinessDKH-DK/Self-Service-Power-BI-Fabric | 113 | — | ~2k | Automated safety check: Pass | None | |
| Erd Studio Setupliam-machine/erd-studio | 165 | — | ~8.5k | Automated safety check: Pass | Custom licence | |
| Tushare Plugin BuilderYourdaylight/stock_datasource | 188 | — | ~2.5k | Automated safety check: Pass | MIT | |
| Pbi Report Builderlukasreese/powerbi-claude-skills | 128 | — | ~7.5k | Automated safety check: Pass | None |
aref-vc/tufte-claude-skill
Apply Edward Tufte's principles to any data visualization, chart, dashboard, or infographic.
DKH-DK/Self-Service-Power-BI-Fabric
Score and prepare Power BI semantic models for AI (Fabric Data Agent / Copilot).
liam-machine/erd-studio
Friendly, step-by-step setup for ERD Studio in an existing dbt project, for people who may be new to dbt or data modelling.
Yourdaylight/stock_datasource
Turns a Tushare API doc URL into a full data plugin for the stock_datasource repo: extractor, ClickHouse schema, query service, config and curl examples.
lukasreese/powerbi-claude-skills
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Maps an unfamiliar codebase into seven evidence-backed documents in docs/codebase/, using a scan script and templates, for onboarding or architecture write-ups.
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End-to-end skill for building, testing, linting, versioning, and publishing a production-grade Python library to PyPI.
Works with
Categories
Comprehensive Power BI data model design review prompt for evaluating model architecture, relationships, and optimization opportunities. Power Bi Model Design Review is an agent skill from github/awesome-copilot, published by the product's own GitHub organization. Comprehensive Power BI data model design review prompt for evaluating model architecture, relationships, and optimization opportunities.
Power Bi Model Design Review fits situations like: tasks that involve Design review and critique; tasks that involve Database schema design.
Run `npx skills add github/awesome-copilot --skill power-bi-model-design-review -a claude-code`. Or copy the skill folder (skills/power-bi-model-design-review in github/awesome-copilot) into .claude/skills/power-bi-model-design-review in your project. Claude Code loads it when a task matches its description.
Run `npx skills add github/awesome-copilot --skill power-bi-model-design-review -a codex`. Or copy the skill folder (skills/power-bi-model-design-review in github/awesome-copilot) into .agents/skills/power-bi-model-design-review in your project. Codex loads it when a task matches its description.
Cursor, Gemini CLI, GitHub Copilot and OpenCode also load SKILL.md folders. With the skills CLI, run `npx skills add github/awesome-copilot --skill power-bi-model-design-review -a cursor` (or -a gemini-cli, github-copilot or opencode for the others). To copy it by hand, put the folder in .cursor/skills/power-bi-model-design-review, .gemini/skills/power-bi-model-design-review, .github/skills/power-bi-model-design-review and .opencode/skills/power-bi-model-design-review in your project.
SKILL.md names no scripts, command-line tools or credentials: Power Bi Model Design Review is instructions for the agent only.
SKILL.md contains no URLs. Any network use would come from the scripts or tools the agent runs. This is read from the text; nothing was executed.
Our automated static check of SKILL.md found no risky patterns, such as piping downloads into a shell, reading credential files or hidden Unicode. It is not a guarantee. Review the folder before installing.
Power Bi Model Design Review is published under the MIT licence (the repository's licence). It allows redistribution, so the full SKILL.md is shown on this page.
About 2.8k tokens (SKILL.md is roughly 11k characters). Agents keep only the skill's name and description in context until a task matches; then they load SKILL.md in full.
Skills that share tags, products or a category with Power Bi Model Design Review: Tufte (aref-vc/tufte-claude-skill, 307 stars), Power Bi AI Readiness (DKH-DK/Self-Service-Power-BI-Fabric, 113 stars), Erd Studio Setup (liam-machine/erd-studio, 165 stars) and Tushare Plugin Builder (Yourdaylight/stock_datasource, 188 stars). The comparison table on this page puts their stars, adoption, token cost, safety result and licence side by side.
github (a GitHub organization, an official publisher) maintains it in github/awesome-copilot, which has 39,792 GitHub stars. The repository holds 417 skills in this directory. The repository was last updated on October 8, 2026.
Source: github/awesome-copilot on GitHub. Facts on this page come from the repository at the commit we read; the author's words are quoted as theirs.