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Quantitative Researcher - Machine Learning

DRWDRW·Financial Services

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Posted

41 days

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About the role

DRW is a diversified trading firm with over 3 decades of experience bringing sophisticated technology and exceptional people together to operate in markets around the world. We value autonomy and the ability to quickly pivot to capture opportunities, so we operate using our own capital and trading at our own risk.

Headquartered in Chicago with offices throughout the U.S., Canada, Europe, and Asia, we trade a variety of asset classes including Fixed Income, ETFs, Equities, FX, Commodities and Energy across all major global markets. We have also leveraged our expertise and technology to expand into three non-traditional strategies: real estate, venture capital and cryptoassets.

We operate with respect, curiosity and open minds. The people who thrive here share our belief that it’s not just what we do that matters–it's how we do it. DRW is a place of high expectations, integrity, innovation and a willingness to challenge consensus.

The Machine Learning Researcher will have a deep understanding of the principles behind modern ML algorithms — including recent advances such as transformer-based architectures and other state-of-the-art frameworks — and the ability to turn that knowledge into high-impact, production-ready solutions.

The role involves applying advanced ML techniques to a wide range of forecasting challenges, building scalable ML pipelines, and deploying them in production, while working with high-dimensional, noisy, structured and unstructured datasets. Experience applying ML models in financial markets is desirable, but exceptional candidates with a strong ML background from tech, startups, or academia will also be considered.

Responsibilities

  • Research, design, and deploy robust ML models.
  • Build and maintain scalable, production-level ML pipelines.
  • Extract signals from large, noisy, real-world datasets.

Qualifications

  • PhD (or exceptional MSc) in ML, Computer Science, or related field.
  • Deep theoretical and practical knowledge of core ML algorithms, and comfortable experimenting with model architectures, feature engineering, and hyperparameter tuning to produce high-performance and resilient models.
  • Proven experience taking ML models from research to live production.

For more information about DRW's processing activities and our use of job applicants' data, please view our Privacy Notice at https://drw.com/privacy-notice.

California residents, please review the California Privacy Notice for information about certain legal rights at https://drw.com/california-privacy-notice.

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Aplyr's read

DRW is a dynamic proprietary trading firm where technology and quantitative research drive innovation across diverse asset classes. Ideal for tech-savvy finance professionals.

Synthesized from recent postings & public sources

What's promising

  • DRW offers a tech-driven environment focusing on quantitative research for trading.
  • The firm provides opportunities in diverse asset classes, including equities and derivatives.
  • DRW is known for hiring skilled engineers and researchers, emphasizing innovation.

What to watch

  • The proprietary trading model may involve high-pressure environments with significant performance expectations.
  • Limited public information about the company's work-life balance and employee satisfaction.
  • The fast-paced nature of trading may not suit everyone, especially those new to finance.

Why DRW

  • DRW integrates cutting-edge technology with trading strategies, setting it apart in the financial sector.
  • The firm actively invests in machine learning and data engineering roles.
  • DRW's focus on diverse asset classes offers varied career paths for specialists.

Aplyr’s read is generated by AI from public sources. Was it useful?

03

About DRW

DRW Trading is a proprietary trading firm that engages in trading across various asset classes, including equities, fixed income, and derivatives. The firm leverages technology and quantitative research to drive its trading strategies.

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