Quantitative AI Strategist
Quick Summary
Prototype and validate quantitative workflows end-to-end — from data retrieval and signal construction through to strategy evaluation, PnL simulation, testing,
Background in quantitative finance, financial engineering, applied mathematics, statistics, physics, computer science, or a related technical field. 3–7 years’ experience in a front-office quant,
Responsibilities
~1 min read- →Prototype and validate quantitative workflows end-to-end — from data retrieval and signal construction through to strategy evaluation, PnL simulation, testing, and risk/scenario analysis — while defining how the AI should interact with data sources, analytics libraries, desk-specific tools, etc., and work with engineers to deliver them as production platform capabilities.
- →Write high-quality platform code and quantitative libraries — including code designed to be called and understood by AI, with clear interfaces, documentation, and instructions to AI.
- →Enhance the platform’s ability to reason about markets, interpret financial data, and produce reliable, contextually aware analysis across products and markets.
- →Continuously evaluate how the platform is used, identify where it excels and where it falls short, and drive improvements that deliver measurable value to trading and research workflows.
- →Engage with stakeholders across the firm — trading desks, risk management, researchers, new joiners, and others — to discover emerging use cases and adapt the platform’s capabilities accordingly.
- →Proactively identify new use cases and capabilities as AI technology evolves.
- →Act as the first line of quantitative support for platform users — diagnosing issues, feeding insights back into platform development, and ensuring a high-quality user experience.
Requirements
~2 min read- Background in quantitative finance, financial engineering, applied mathematics, statistics, physics, computer science, or a related technical field.
- 3–7 years’ experience in a front-office quant, strategist, or quantitative research role, ideally with exposure to multiple asset classes.
- Solid understanding of financial markets, pricing/risk methodologies, and PnL attribution.
- Experience building or contributing to internal analytics platforms or tools used by traders and researchers.
- Experience with signal generation, backtesting, or systematic strategy development.
- Strong programming skills in Python. Familiarity with Git and collaborative development workflows.
- Familiarity with AI technologies and their application to quantitative workflows is a strong plus.
- Experience building AI agents is a strong plus.
- Excellent communication skills — able to engage directly with trading desks to understand their needs, formalize them into quantitative specifications, and collaborate effectively with software engineers.
- Strong problem-solving ability, intellectual curiosity, and comfort working across team boundaries in a fast-paced trading environment.
- Strong ability to quickly learn and adapt to new technologies — particularly important given the rapid pace of development in AI.
The annual base salary range for this position is $175k to $250k depending on the candidate’s experience, qualifications, and relevant skill set. The position is also eligible for an annual discretionary bonus. In addition, DRW offers a comprehensive suite of employee benefits including group medical, pharmacy, dental and vision insurance, 401k (with discretionary employer match), short and long-term disability, life and AD&D insurance, health savings accounts, and flexible spending accounts.
Listing Details
- Posted
- March 11, 2026
- First seen
- March 26, 2026
- Last seen
- April 21, 2026
Posting Health
- Days active
- 26
- Repost count
- 0
- Trust Level
- 23%
- Scored at
- April 21, 2026
Signal breakdown
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