About the Firm
Our client is a leading global quantitative hedge fund that applies advanced research, technology, and data-driven methods to investment problems across international financial markets. The firm is expanding its AI research business and is looking for an exceptional AI Researcher to develop novel machine-learning approaches for quantitative investment research. This is an opportunity to work with large-scale datasets, advanced computing resources, and experienced researchers and engineers in a highly collaborative environment.
Key Responsibilities
- Research and develop advanced machine-learning and deep-learning methods for quantitative investment applications.
- Design predictive models using large-scale financial, market, and alternative datasets.
- Explore areas including time-series modelling, representation learning, transformers, large language models, reinforcement learning, generative AI, and foundation models.
- Develop robust approaches to feature learning, signal discovery, forecasting, and model combination.
- Design experiments and evaluate models with a strong focus on robustness, generalisation, interpretability, and computational efficiency.
- Adapt and implement ideas from leading academic research, identifying techniques with potential applications in financial markets.
- Work closely with quantitative researchers, portfolio managers, data scientists, and engineers to bring research ideas into production.
- Improve research tools, machine-learning pipelines, and large-scale model-training frameworks.
- Present research findings clearly and contribute to the team's broader AI research direction.
Qualifications
- Master's degree or PhD in Computer Science, Artificial Intelligence, Machine Learning, Mathematics, Statistics, Physics, Engineering, or another highly quantitative discipline.
- Strong theoretical and practical understanding of machine learning, deep learning, statistics, and optimisation.
- Demonstrated expertise in at least one relevant area, such as:
- Time-series modelling
- Representation learning
- Natural language processing or large language models
- Transformers and foundation models
- Reinforcement learning
- Generative modelling
- Probabilistic modelling
- Computer vision or multimodal learning
- Excellent programming skills in Python and hands-on experience with frameworks such as PyTorch, JAX, or TensorFlow.
- Ability to independently formulate research questions, design experiments, and evaluate results rigorously.
- Experience working with large datasets and GPU-based or distributed model-training environments.
- Strong communication skills and the ability to collaborate across research and engineering teams.
- Intellectual curiosity, creativity, and a genuine interest in applying AI to challenging real-world problems.

Job ID PR/606744
We support the Financial Sciences & Services industry with talent that can truly shape the future of a business.
Whether that be Quantitative Analyti...
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