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ML Quant Researcher

The City, Central London💼 Full-time🗓 2026-06-04 → 2026-07-31

Core

Design, develop, and deploy LLM-driven pipelines to extract alpha signals from unstructured financial data (news, filings, transcripts) and build end-to-end ML systems for systematic trading.

Role type

Machine Learning / NLP Research Engineer (Systematic Trading)

Builds

LLM-driven signal extraction pipelines, end-to-end ML systems, and alpha generation strategies

Domain

Finance / Quantitative Trading / Natural Language Processing

Deliverable

production ML models

Required skills

Python, PyTorch, TensorFlow, Hugging Face, LangChain, RAG architectures, vector databases, statistical learning, experimental design, data engineering, SQL, time-series data handling

Preferred skills

NLP/ML in finance, alpha research, systematic trading, time-series modelling, cloud/distributed compute

Technologies

PyTorch, TensorFlow, Hugging Face, LangChain, vector databases

Responsibilities

Design and deploy LLM pipelines for unstructured financial data; Build and scale ML systems from research to production; Apply NLP and retrieval techniques to large text datasets; Develop innovative alpha signals; Implement backtesting, validation, and monitoring frameworks; Evaluate model performance and data quality; Optimise data pipelines for speed and scalability

Seniority

Mid-level, hands-on IC

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