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🧠 SEO Content Analyzer

From Raw Text to Structured Intelligence in < 2.0s

Project Mockup

⏱️ The 30-Second Summary

  • Problem: Conventional SEO analysis is manual, fragmented, and slow—delaying content iteration.
  • Solution: A high-performance AI architectural approach that transforms raw text into a structured SEO audit instantly.
  • Impact: Achieves ultra-low latency (< 2s) using Llama 3.3 70B & Groq LPUs, delivering actionable metrics (Keyword Density, Readability, and Structure) with state-of-the-art accuracy.

🚀 Key Features

  • Instant Full-Spectrum Audit: Extracts 3-5 high-intent keywords and evaluates their density within the context.
  • Actionable Strategic Insights: Provides 3-5 concrete, non-generic recommendations to improve SERP ranking potential.
  • Premium UX/DX: A sleek, dark-mode responsive interface optimized for readability and speed.
  • Secure Architecture: Serverless implementation ensures API key protection and high scalability.

🛠️ Technical Stack & Architectural Decisions

Tech Choice The "Why" (Engineering Rationale)
Frontend React + Tailwind Chosen for rapid prototyping and building a premium, responsive UI with zero CSS overhead.
Backend Vercel Serverless Decouples the frontend from the AI provider, ensuring secure key management and effortless scaling.
AI Model Llama 3.3 70B Offers high-reasoning capabilities comparable to GPT-4o but with superior performance for structured extraction.
Inference Groq LPU™ Enabled sub-2-second response times, critical for real-time user engagement and content workflows.

⚙️ Local Development

  1. Clone & Install:

    git clone <repo-url>
    cd seo-analyzer
    npm install
  2. Environment Setup: Create a .env.local file:

    GROQ_API_KEY=your_key_here
  3. Launch:

    npm run dev

🛡️ License

Distributed under the MIT License. See LICENSE for more information.


Developed with focus on Performance, User Experience, and Actionable AI.

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