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Quant Science
@quantscience_

How to create your own "mini" hedge fund with algorithmic trading and Python A thread 🧡

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Quant Science
@quantscience_

1. What is a Hedge Fund Hedge funds pool money from wealthy individuals or institutions to seek higher, risk-adjusted returns across multiple markets.

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Quant Science
@quantscience_

While they often strive to outperform benchmarks like the S&P 500, the focus is usually on lowering risk (drawdowns) rather than purely maximizing returns.

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Quant Science
@quantscience_

2. Define Your Goals Decide on a target annual return and understand the drawdown (potential loss) you can tolerate. For instance, aiming for ~20% annual returns may entail accepting a ~10% drawdown.

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Quant Science
@quantscience_

Extremely high returns (e.g., 100% per year) can be possible but come with huge drawdowns (50–70%), which most investors find difficult to handle psychologically.

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Quant Science
@quantscience_

3. Choose Your Markets: Trading across different asset classes (e.g., equities, commodities, futures) can reduce overall risk through diversification.

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Quant Science
@quantscience_

Example: If equity markets are falling (S&P 500 futures, β€œES”), another market like oil (β€œCL”) might be trending up, which could offset losses.

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Quant Science
@quantscience_

4. Algorithmic Strategy Ideas: Momentum Strategies: Buy (go long) when the price is above a long-term moving average (e.g., 200-day SMA) or sell (go short) when below. This aims to catch trends.

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Quant Science
@quantscience_

Mean Reversion Strategies: Identify when prices deviate from an average or band (like Bollinger Bands) and expect prices to revert back.

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Quant Science
@quantscience_

Long/Short Pairs: Having both bullish and bearish strategies for each market (e.g., long ES, short ES, long CL, short CL) offers additional diversification and helps hedge exposure.

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Quant Science
@quantscience_

5. Learn Python Python Quant Stack is 100% free (and covers data, analysis, research, backtesting, and execution): OpenBB $0 Pandas $0 NumPy $0 Zipline $0 AlphaLens $0 VectorBT $0 Riskfolio $0 IBAPI $0

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Quant Science
@quantscience_

6. Tracking Performance and Grouping Strategies: Maintain a portfolio of several strategies. Group them by market type (e.g., equities vs. commodities) or by aggressiveness (e.g., β€œconservative” vs. β€œaggressive”).

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Quant Science
@quantscience_

Next: Analyze metrics: Regularly monitoring performance, drawdowns, and market conditions is critical for refining your strategy portfolio over time.

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Quant Science
@quantscience_

I have one more thing before you go. If you want to become an algorithmic trader in 2025, then I'd like to help. This is how: πŸ‘‡

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Quant Science
@quantscience_

🚨How I built my algorithmic trading system in Python (for Free) β€’ QSConnect: Build your quant research database β€’ QSResearch: Research and run machine learning strategies β€’ Omega: Automate trade execution οΏΌ πŸ‘‰ Register here (790+ registered): <a target="_blank" href="https://learn.quantscience.io/become-a-pro-quant-trader-with-python" color="blue">learn.quantscience.io/become-a-pro-q…</a>

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That's a wrap! If you enjoyed this thread: 1. Follow me @quantscience_ for more of these 2. RT the tweet below to share this thread with your audience <a target="_blank" href="https://twitter.com/1683526993059430411/status/1980302108118135165" color="blue">x.com/16835269930594…</a>