We are seeking a technically exceptional AI/ML Researcher to join a front-office global markets team, focused on building and deploying advanced machine learning and LLM-driven solutions in a fast-paced, high-impact environment.
Core Responsibilities
Design, develop, and productionise machine learning models to support trading, pricing, and risk management across asset classes
Build and deploy NLP/LLM pipelines to extract signals from unstructured financial data (e.g. news, client flow, research, transcripts)
Develop scalable, end-to-end ML systems, from data ingestion and feature engineering through to model deployment and monitoring
Apply advanced techniques in machine learning, statistics, and applied mathematics to solve complex market problems
Conduct rigorous research, backtesting, and validation to ensure robustness, minimise overfitting, and mitigate data leakage
Collaborate closely with trading, sales, and engineering teams to deliver commercial, front-office solutions
Build and maintain reusable analytical libraries and contribute to core research infrastructure
Monitor model performance and manage model lifecycle, including governance, controls, and risk management
Required Skills & Experience
Master's degree (PhD preferred) in a quantitative STEM discipline (e.g. Computer Science, Mathematics, Physics, Engineering)
Strong hands-on experience in machine learning, data science, and software engineering in a production environment
Advanced Python programming skills, with experience building scalable, maintainable codebases
Experience with modern ML frameworks such as PyTorch, TensorFlow, or equivalent
Strong understanding of statistical modelling, probabilistic methods, and experimental design
Experience working with large, complex datasets (structured and unstructured)
Proven ability to design, implement, and deploy end-to-end ML pipelines
NLP / LLM-Focused Experience (Highly Desirable)
Experience building or working with Large Language Models, including prompt engineering, evaluation, and fine-tuning
Familiarity with retrieval-based systems (RAG pipelines, embeddings, semantic search, vector databases)
Experience applying NLP techniques to real-world datasets, particularly in financial or time-sensitive contexts
Knowledge of model evaluation techniques for LLMs, including guardrails and hallucination mitigation
Technical & Infrastructure Skills
Experience with data engineering concepts, including ETL pipelines, distributed systems, and data storage solutions (SQL/NoSQL)
Familiarity with cloud-based ML platforms (e.g. AWS SageMaker, Bedrock) and scalable infrastructure
Strong understanding of software development best practices (version control, testing, CI/CD, containerisation)
Experience optimising models and pipelines for performance, latency, and scalability
Domain & Market Experience (Preferred)
Exposure to financial markets, trading, or quantitative research (e.g. alpha research, eFX, market microstructure)
Experience working with time-series data and signal generation techniques
Understanding of trading workflows, pricing models, or risk management frameworks
Leadership & Stakeholder Engagement
Ability to contribute to strategic direction and innovation within a growing AI capability
Experience mentoring junior team members and promoting best practices in ML and engineering
Strong stakeholder management skills, with the ability to translate technical outputs into business impact
Comfortable working in a collaborative, cross-functional environment with traders, quants, and engineers
Candidate Profile
Highly analytical and intellectually curious, with a strong problem-solving mindset
Comfortable operating in a fast-paced, front-office environment with high expectations for impact
Demonstrates ownership, accountability, and a strong bias toward execution
Passionate about applying machine learning and LLM technologies to real-world problems in financial markets
Adaptable, proactive, and motivated to continuously learn and improve
This role offers the opportunity to work at the intersection of machine learning, NLP/LLMs, and financial markets, contributing to the development of next-generation AI-driven trading and research capabilities.
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