AI Sports Odds Web Application need Web Development
Contact person: AI Sports Odds Web Application
Phone:Show
Email:Show
Location: Warsaw, Poland
Budget: Recommended by industry experts
Time to start: As soon as possible
Project description:
"Goal
Build a clean, fast web app that:
• Generates AI predictions and “fair prices” for every game.
• Scrapes and compares live bookmaker odds in one screen.
• Tracks price movement and flags value bets.
• Lets users log bets and see ROI/performance.
• Incorporates weather into models.
Sports & Markets
• Leagues: NRL, AFL, NBA, NFL, NHL, MLB, NBL
• Markets: H2H win probability, Total (points), Line (spread)
Core Features
1. AI Predictions
• H2H win probabilities (Random Forest Classifier).
• Total & Line predictions (Gradient Boosting Regressor).
• Inputs include team strength, form, home/away, weather, historical stats.
• Outputs “fair odds” per market; models update on new results.
2. Live Odds Comparison (Scraped)
• Bookmakers: Sportsbet, [login to view URL], Ladbrokes, Tabtouch, Betfair, BetRight, Picklebet (extensible).
• Display all prices per market; auto-highlight best price.
• Data refresh multiple times daily (cron/queue).
3. Price Movement History
• Store opening price and every change with timestamps.
• Show movement table to identify steam.
4. Value Bet Suggestions
• Compare fair price vs. best available; flag if edge ≥ threshold (default 15%, user adjustable).
• “Suggested Bet” badge/alert.
5. Bet Tracker
• Manual entry: selection, market, odds, stake, bookmaker, result.
• Auto P/L, ROI, exposure, per-bet summary.
6. Weather Integration
• Fetch forecast by game location and feed into prediction pipeline.
Web App Requirements
• Modern, responsive UI with team logos, sport filters, odds toggles (H2H / Total / Line), and a panel for Suggested Bets & Price Moves.
• Basic auth and roles (User/Admin) acceptable; simple onboarding.
• Server jobs for scraping/model updates; retry & rate-limit handling.
• Persistent storage for odds snapshots, bets, and results.
Tech (suggested, flexible)
• Frontend: React/[login to view URL]
• Backend: Node.js or Python (FastAPI/Express) + job runner (Celery/BullMQ)
• ML: scikit-learn (RF/GBR) with versioned models
• DB: Postgres (primary)
• Weather: standard forecast API integration
Deliverables
• Deployed web app (cloud) with env-based config.
• Source code (repo) + README, setup scripts, and seed data.
• Scrapers for listed bookies, model training scripts, and scheduled refresh.
• Minimal admin view for monitoring jobs/feeds.
• Compliance notes (see below).
Please demonstrate your capabilities with a small MVP; ongoing work will follow based on results." (client-provided description)
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