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Quantitative Trading & Research - AI/ML Quantitative Researcher - Associate or Vice President
Job in
London, Greater London, W1B, England, UK
Listed on 2026-09-21
Listing for:
JP Morgan Chase
Full Time
position Listed on 2026-09-21
Job specializations:
-
Software Development
Data Scientist, Machine Learning/ ML Engineer
Job Description & How to Apply Below
Our work spans signal research, pricing, market making, execution, portfolio construction, risk management, and the production systems that support them.
Job Summary As a Quantitative Trading & Research – AI/ML Quantitative Researcher, you will lead research on building Transformer-based and time-series foundation models over large-scale market datasets, and develop the methods needed to make them robust, transferable, and measurable across instruments and regimes. We are seeking an AI/ML quantitative researcher with hands-on experience pre-training large foundation models from scratch.
This role is designed for someone who wants to do deep research with real constraints - where questions like scaling laws, data efficiency, and robustness are not academic footnotes, but the core of the agenda.
Job Responsibilities Pre-train Transformer-based and time-series foundation models from scratch using large-scale market, order-book, transaction, and cross-asset datasets.
Develop data representations, tokenization schemes, self-supervised objectives, model architectures, and distributed training recipes for financial time series.
Fine-tune and post-train foundation models for alpha generation, pricing, market making, execution, and risk-management tasks.
Study scaling laws, transfer across instruments and asset classes, regime robustness, data efficiency, and the trade-offs among model quality, inference cost, and latency.
Design evaluation protocols that connect pre-training metrics to economically meaningful outcomes, including out-of-sample prediction, simulated trading, transaction costs, capacity, and live markouts.
Build reusable training, checkpointing, evaluation, and model-serving components with ML infrastructure engineers.
Required Qualifications , Capabilities, and Skills Advanced degree (Master’s, PhD, or equivalent experience) in machine learning, computer science, statistics, mathematics, operations research, engineering, or a related quantitative field.
Demonstrated experience pre-training a large model from scratch (Transformer/LLM/multimodal/time-series). Experience limited to API usage or prompt engineering is not sufficient.
Experience building large-scale data pipelines and distributed training systems using PyTorch, JAX, or equivalent frameworks.
Deep knowledge of large-model training and evaluation: optimization, parallelism, mixed precision, checkpointing, experiment design, ablations, and benchmarking.
Evidence of research/technical quality through successful large-model training, high-impact research, open-source systems, or production deployment.
Preferred Qualifications , Capabilities, and Skills
Experience with fine-tuning/post-training for forecasting, ranking, decision-making, or structured prediction.
Prior work on time-series foundation models, limit-order-book modeling, multimodal market data, or cross-asset transfer learning.
Experience in quantitative trading, HFT, electronic market making, or systematic investing - especially with models deployed to live trading.
Publications at leading ML venues and/or substantial contributions to large-scale model-training systems.
J.P. Morgan is a global leader in financial services, providing strategic advice and products to the world’s most prominent corporations, governments, wealthy…
Position Requirements
10+ Years
work experience
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