agentsclimarketplace

Hft quant expert

Skill aiskillstore/marketplace/skills/barissozen/hft-quant-expert

Quantitative trading expertise for DeFi and crypto derivatives. Use when building trading strategies, signals, risk management. Triggers on signal, backtest, alpha, sharpe, volatility, correlation, position size, risk.From its SKILL.md

Install
npx -y skills add aiskillstore/marketplace --skill hft-quant-expert

Assembled from the repository path, not quoted from the project. Check it against their README if it does not work.

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SKILL.md

1.4 KB, 309 tokens by cl100k_base, as published. Nobody here has run it

HFT Quant Expert

Quantitative trading expertise for DeFi and crypto derivatives.

When to Use

  • Building trading strategies and signals
  • Implementing risk management
  • Calculating position sizes
  • Backtesting strategies
  • Analyzing volatility and correlations

Workflow

Step 1: Define Signal

Calculate z-score or other entry signal.

Step 2: Size Position

Use Kelly Criterion (0.25x) for position sizing.

Step 3: Validate Backtest

Check for lookahead bias, survivorship bias, overfitting.

Step 4: Account for Costs

Include gas + slippage in profit calculations.


Quick Formulas

# Z-score
zscore = (value - rolling_mean) / rolling_std

# Sharpe (annualized)
sharpe = np.sqrt(252) * returns.mean() / returns.std()

# Kelly fraction (use 0.25x)
kelly = (win_prob * win_loss_ratio - (1 - win_prob)) / win_loss_ratio

# Half-life of mean reversion
half_life = -np.log(2) / lambda_coef

Common Pitfalls

  • Lookahead bias - Using future data
  • Survivorship bias - Only existing assets
  • Overfitting - Too many parameters
  • Ignoring costs - Gas + slippage
  • Wrong annualization - 252 daily, 365*24 hourly

What ships with it: 1 file

8.8 KB alongside SKILL.md

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