Millennium Management
222 open roles
Deep Learning Quantitative Researcher
Hong KongOnsitePosted Jul 21, 2026
Job description
Deep Learning Quantitative Researcher Please submit resumes to Quant. TalentEUR@mlp.com and reference REQ-30088. Preferred Candidate Profile
- Top-tier academic background from a globally top-20 university (e.g., MIT, Harvard, Princeton, Stanford, Caltech)
- PhD-level training in Computer Science, Engineering, Physics, Mathematics, or Statistics preferred
- Gold medal in a national or international olympiad (IMO, CMO, IOI, NOI, IPhO, CPhO) strongly preferred
- Practical, hands-on experience with large-scale, end-to-end deep learning at a top-tier quantitative trading firm or a leading AI/technology company preferred Key Responsibilities
- Design and build the firm’s core deep learning pipelines for applied quantitative alpha research— from data preparation and distributed training through evaluation and production deployment.
- Drive a significant part of the research agenda using applied deep learning techniques, owning the full empirical loop: problem formulation, model design, training, validation, and performance attribution.
- Uphold rigorous research discipline in a low signal-to-noise domain — strict out-of-sample hygiene, leakage prevention, and honest benchmarking against simpler baselines.
- Act as the firm’s central point of deep learning expertise: advise on architecture selection and training diagnostics, review model designs, and set standards for how models are evaluated and promoted.
- Facilitate the seamless flow of model fitting and model computation across teams and systems through standardized training and inference interfaces and reusable components.
Qualifications
& Experience
- 3–5 years of professional experience applying deep learning to large-scale problems, ideally in quantitative finance. A strong PhD research record plus hands-on experience training large models at a leading AI/technology company will be considered in lieu of direct quant experience.
- Proven end-to-end ownership of the deep learning model lifecycle on at least one significant production system or published research line.
- Deep expertise in Python and a modern DL framework.
- Hands-on experience with large-scale model training: distributed/multi-GPU training, mixed precision, and throughput profiling and optimization.
- Strong foundations in statistics, optimization, and machine learning theory. Hard Skills & Technical Knowledge:
- Command of modern deep learning architectures, and the judgment to know when a simpler model should win.
- Practical technique for low signal-to-noise learning: regularization, ensembling, and validation protocols that survive out-of-sample.
- Experience with large-scale datasets — efficient columnar formats, streaming data loaders, and point-in-time-correct dataset construction.
- Fluency with experiment-management tooling: experiment tracking, hyperparameter optimization, and reproducible research environments.
- Working knowledge of C++ or CUDA-level optimization a plus; familiarity with LLM tooling as a research accelerant a plus. Soft Skills:
- Research Taste & Rigor: Designs clean experiments and kills ideas quickly when the evidence says so.
- Proactive Collaboration: Builds strong partnerships across research and engineering.
- High Integrity: Upholds rigorous ethical standards in handling sensitive data and models.
- Growth Mindset: Stays current with a fast-moving field and adopts what works.
- Superb Communication: Explains model behavior and uncertainty to technical and nontechnical audiences.
Description copied from Millennium Management's careers page. Read the full posting before you apply.
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