
Social Media Analyzer
FreeTrack and analyze your social media campaign performance.
Free · Opens the source repo
What Social Media Analyzer does
The Social Media Analyzer is a Python and Bash-based tool designed for analyzing the performance of social media campaigns. It calculates key engagement metrics, return on investment (ROI), and benchmarks across various platforms including Instagram, Facebook, Twitter, LinkedIn, and TikTok. Users can input data about their social media posts, and the analyzer will validate the data before performing calculations to ensure accuracy. This tool is particularly useful for marketers, social media managers, and analysts who need to assess the effectiveness of their campaigns and make data-driven decisions.
The analysis workflow begins with validating input data, ensuring that all necessary fields are complete and that the data adheres to specified requirements. Once validated, the tool calculates engagement metrics such as engagement rate, click-through rate (CTR), and reach rate for each post. It aggregates these metrics at the campaign level and can calculate ROI if ad spend data is provided. The analyzer also compares the results against platform benchmarks, helping users identify which posts performed well and which did not.
In addition to performance metrics, the Social Media Analyzer provides actionable recommendations based on the analysis. For instance, it categorizes engagement rates into performance ratings such as excellent, good, average, and poor, guiding users on how to optimize their campaigns. The tool also includes detailed ROI calculations, allowing users to understand the financial effectiveness of their advertising efforts. Overall, this skill is essential for anyone looking to conduct a thorough social media audit and improve their marketing strategies based on solid data.
When to use it
Use this tool when you need to evaluate the effectiveness of social media campaigns and derive actionable insights from performance metrics.
When not to use it
This skill may not be suitable for users looking for real-time analytics or those who require advanced machine learning capabilities for predictive analysis.
What you can build with it
Evaluating Campaign Success
Use the analyzer to assess the effectiveness of your recent social media campaigns and identify high-performing posts.
Calculating ROI
Input your ad spend and engagement data to calculate the return on investment for your social media advertising efforts.
Benchmarking Against Industry Standards
Compare your engagement metrics with industry benchmarks to see how your campaigns stack up against competitors.
How to install Social Media Analyzer
View source1. Install with the skills CLI
npx skills add alirezarezvani/claude-skills/social-media-analyzer --agent claude-code2. Or install it manually
Download the skill folder and drop it into ~/.claude/skills/ for all projects, or .claude/skills/ to scope it to one repo. Restart Claude Code so it picks up the new skill.
Anthropic's agentic coding CLI, and the reference implementation of Agent Skills. Drop a skill folder into ~/.claude/skills and Claude Code loads it automatically whenever a task matches the skill's description. Claude Code docs
Inside SKILL.md
Written by alirezarezvaniSocial Media Analyzer
Campaign performance analysis with engagement metrics, ROI calculations, and platform benchmarks.
Table of Contents
Analysis Workflow
Analyze social media campaign performance:
- Validate input data completeness (reach > 0, dates valid)
- Calculate engagement metrics per post
- Aggregate campaign-level metrics
- Calculate ROI if ad spend provided
- Compare against platform benchmarks
- Identify top and bottom performers
- Generate recommendations
- Validation: Engagement rate < 100%, ROI matches spend data
Input Requirements
| Field | Required | Description |
|---|---|---|
| platform | Yes | instagram, facebook, twitter, linkedin, tiktok |
| posts[] | Yes | Array of post data |
| posts[].likes | Yes | Like/reaction count |
| posts[].comments | Yes | Comment count |
| posts[].reach | Yes | Unique users reached |
| posts[].impressions | No | Total views |
| posts[].shares | No | Share/retweet count |
| posts[].saves | No | Save/bookmark count |
| posts[].clicks | No | Link clicks |
| total_spend | No | Ad spend (for ROI) |
Data Validation Checks
Before analysis, verify:
- Reach > 0 for all posts (avoid division by zero)
- Engagement counts are non-negative
- Date range is valid (start < end)
- Platform is recognized
- Spend > 0 if ROI requested
Engagement Metrics
Engagement Rate Calculation
Engagement Rate = (Likes + Comments + Shares + Saves) / Reach × 100
Metric Definitions
| Metric | Formula | Interpretation |
|---|---|---|
| Engagement Rate | Engagements / Reach × 100 | Audience interaction level |
| CTR | Clicks / Impressions × 100 | Content click appeal |
| Reach Rate | Reach / Followers × 100 | Content distribution |
| Virality Rate | Shares / Impressions × 100 | Share-worthiness |
| Save Rate | Saves / Reach × 100 | Content value |
Performance Categories
| Rating | Engagement Rate | Action |
|---|---|---|
| Excellent | > 6% | Scale and replicate |
| Good | 3-6% | Optimize and expand |
| Average | 1-3% | Test improvements |
| Poor | < 1% | Analyze and pivot |
ROI Calculation
Calculate return on ad spend:
- Sum total engagements across posts
- Calculate cost per engagement (CPE)
- Calculate cost per click (CPC) if clicks available
- Estimate engagement value using benchmark rates
- Calculate ROI percentage
- Validation: ROI = (Value - Spend) / Spend × 100
ROI Formulas
| Metric | Formula |
|---|---|
| Cost Per Engagement (CPE) | Total Spend / Total Engagements |
| Cost Per Click (CPC) | Total Spend / Total Clicks |
| Cost Per Thousand (CPM) | (Spend / Impressions) × 1000 |
| Return on Ad Spend (ROAS) | Revenue / Ad Spend |
Engagement Value Estimates
| Action | Value | Rationale |
|---|---|---|
| Like | $0.50 | Brand awareness |
| Comment | $2.00 | Active engagement |
| Share | $5.00 | Amplification |
| Save | $3.00 | Intent signal |
| Click | $1.50 | Traffic value |
ROI Interpretation
| ROI % | Rating | Recommendation |
|---|---|---|
| > 500% | Excellent | Scale budget significantly |
| 200-500% | Good | Increase budget moderately |
| 100-200% | Acceptable | Optimize before scaling |
| 0-100% | Break-even | Review targeting and creative |
| < 0% | Negative | Pause and restructure |
Platform Benchmarks
Engagement Rate by Platform
| Platform | Average | Good | Excellent |
|---|---|---|---|
| 1.22% | 3-6% | >6% | |
| 0.07% | 0.5-1% | >1% | |
| Twitter/X | 0.05% | 0.1-0.5% | >0.5% |
| 2.0% | 3-5% | >5% | |
| TikTok | 5.96% | 8-15% | >15% |
CTR by Platform
| Platform | Average | Good | Excellent |
|---|---|---|---|
| 0.22% | 0.5-1% | >1% | |
| 0.90% | 1.5-2.5% | >2.5% | |
| 0.44% | 1-2% | >2% | |
| TikTok | 0.30% | 0.5-1% | >1% |
CPC by Platform
| Platform | Average | Good |
|---|---|---|
| $0.97 | <$0.50 | |
| $1.20 | <$0.70 | |
| $5.26 | <$3.00 | |
| TikTok | $1.00 | <$0.50 |
See references/platform-benchmarks.md for complete benchmark data.
Tools
Calculate Metrics
python scripts/calculate_metrics.py assets/sample_input.json
Calculates engagement rate, CTR, reach rate for each post and campaign totals.
Analyze Performance
python scripts/analyze_performance.py assets/sample_input.json
Generates full performance analysis with ROI, benchmarks, and recommendations.
Output includes:
- Campaign-level metrics
- Post-by-post breakdown
- Benchmark comparisons
- Top performers ranked
- Actionable recommendations
Examples
Sample Input
See assets/sample_input.json:
{
"platform": "instagram",
"total_spend": 500,
"posts": [
{
"post_id": "post_001",
"content_type": "image",
"likes": 342,
"comments": 28,
"shares": 15,
"saves": 45,
"reach": 5200,
"impressions": 8500,
"clicks": 120
}
]
}
Sample Output
See assets/expected_output.json:
{
"campaign_metrics": {
"total_engagements": 1521,
"avg_engagement_rate": 8.36,
"ctr": 1.55
},
"roi_metrics": {
"total_spend": 500.0,
"cost_per_engagement": 0.33,
"roi_percentage": 660.5
},
"insights": {
"overall_health": "excellent",
"benchmark_comparison": {
"engagement_status": "excellent",
"engagement_benchmark": "1.22%",
"engagement_actual": "8.36%"
}
}
}
Interpretation
The sample campaign shows:
- Engagement rate 8.36% vs 1.22% benchmark = Excellent (6.8x above average)
- CTR 1.55% vs 0.22% benchmark = Excellent (7x above average)
- ROI 660% = Outstanding return on $500 spend
- Recommendation: Scale budget, replicate successful elements
Reference Documentation
Platform Benchmarks
references/platform-benchmarks.md contains:
- Engagement rate benchmarks by platform and industry
- CTR benchmarks for organic and paid content
- Cost benchmarks (CPC, CPM, CPE)
- Content type performance by platform
- Optimal posting times and frequency
- ROI calculation formulas
Proactive Triggers
- Engagement rate below platform average → Content isn't resonating. Analyze top performers for patterns.
- Follower growth stalled → Content distribution or frequency issue. Audit posting patterns.
- High impressions, low engagement → Reach without resonance. Content quality issue.
- Competitor outperforming significantly → Content gap. Analyze their successful posts.
Output Artifacts
| When you ask for... | You get... |
|---|---|
| "Social media audit" | Performance analysis across platforms with benchmarks |
| "What's performing?" | Top content analysis with patterns and recommendations |
| "Competitor social analysis" | Competitive social media comparison with gaps |
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.
Related Skills
- social-content: For creating social posts. Use this skill for analyzing performance.
- campaign-analytics: For cross-channel analytics including social.
- content-strategy: For planning social content themes.
- marketing-context: Provides audience context for better analysis.
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