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ML Modeller

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Job Description - ML Modeller

Detailed Job Requirements

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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