Live opening · Posted 21 hours ago

Artificial Intelligence Research Lead

JPMorgan Chase · LONDON, LONDON, United Kingdom
Oracle
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At a glance

The key details from the original listing.

Posted 21 hours ago
CompanyJPMorgan Chase
LocationLONDON, LONDON, United Kingdom
SourceOracle
Listed21 hours ago

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About the role

Description supplied by the original job listing.

AI Research sits within the Chief Data & Analytics Office (CDAO) at JPMorganChase which is responsible for accelerating the firm’s data and analytics journey. This includes ensuring the quality, integrity, and security of the firm's data, as well as leveraging this data to generate insights and drive decision-making. The CDAO is also responsible for developing and implementing solutions that support the firm’s commercial goals by harnessing artificial intelligence and machine learning technologies to develop new products, improve productivity, and enhance risk management, effectively and responsibly.
As a Vice President / Research Lead in AI Research, you will work on developing novel techniques, tools, and frameworks to model and solve complex large-scale problems in the bank. You will develop a close understanding of the challenges in practical applications of AI and leverage that understanding to formulate new research directions and solutions that can shift the frontier. Your work will span from early-stage innovation and rigorous evaluation to production-scale delivery in close collaboration with engineering and product teams.
Job responsibilities
Work on multiple commercially oriented research projects in collaboration with internal data scientists, applied engineering teams and stakeholders across businesses e.g. Commercial & Investment Banking (including Markets), Asset & Wealth Management, Consumer & Community Banking, etc.
Formulate problems, generate hypotheses, develop new algorithms and models, conduct experiments and rigorous evaluations, synthesize and communicate results, and deliver well-tested, high-quality code.
Contribute to high-impact business applications, reusable assets and products, and research initiatives.
Provide thought leadership on internal and external forums through white papers, publications and presentations.
Lead projects or major workstreams in larger projects/initiatives. Play a key role in ensuring that problem definitions and solutions are technically sound, generalizable and capture business/product requirements.
Proactively identify and propose new research initiatives motivated by long-term business needs.
Required qualifications, capabilities, and skills
PhD in Computer Science, Engineering, or related fields with relevant research & work experience in AI/ML
Research publications in top-tier AI/ML venues (e.g., conferences, journals) – broad conferences such as NeurIPS, ICML, ICLR, etc., or highly regarded specialized conferences such as ICAPS, CRYPTO, etc.
Deep understanding of fundamental AI/ML techniques and a strong grasp of current state of the art in specific areas of expertise.
Effective verbal and written communication skills with the ability to address both technical and business audiences.
Practical software development experience in collaborative project settings such as open-source projects or industry experience. Ability to deliver modular, optimized, high-quality Python code with tests.
Experience leading and mentoring AI researchers, partnering with engineering and business stakeholders to drive execution and strategic planning across near-term deliveries and longer-horizon research initiatives.
Demonstrated ability to translate research into real-world impact e.g., production-ready solutions, prototypes/pilots, reusable components, reference architectures, or standards.
Strong track record of research in one of the following areas: (a) Multimodal model/agent security and safety, alignment, guardrails, red teaming, adversarial attacks and defenses, robustness to distribution shifts (b) Foundation model training for structured data modalities (e.g. tabular, graph) (c) Reinforcement Learning, continual learning (parametric/model-based), model post-training and test-time adaptation.
Preferred qualifications, capabilities, and skills
Practical experience with ML libraries (e.g. PyTorch, TensorFlow/Keras, HuggingFace Transformers etc.), agent frameworks (e.g. LangGraph, Google ADK, etc.), common formal verification tools and languages (e.g., Coq/Isabelle/Lean, TLA+, Alloy, Z3, PDDL).
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