einstein-research-backtest-engine
Programmatic backtesting framework for trading strategies. Runs backtests with historical price data (yfinance or CSV), supports momentum/mean-reversion/factor/signal-based strategies, walk-forward optimization, out-of-sample testing, transaction cost modeling, regime-aware splits, and full performance metrics (Sharpe, Sortino, Calmar, max drawdown, CAGR, win rate, profit factor). Distinct from einstein-research-backtest (which provides methodology guidance). Use when a user wants to actually run a backtest, test a specific strategy on historical data, or generate performance metrics.
Source facts
- Repository
- knownasnaffy/prompthound
- Last source activity
- July 6, 2026 at 07:03
- Detected SKILL.md language
- English
- Stars
- 0
- Forks
- 1
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