Location: Fully remote or hybrid in London

Reports to: Head of Enterprise Sales

Employment type: Full-time, permanent

Compensation: Competitive, dependent on experience (base + bonus)

About the Role

Our client is seeking an experienced Quantitative Developer / Quantitative Analyst to build the first in-house quantitative capability within an established financial markets intelligence and data business.

Skills & Experience

  • 5+ years’ experience in quantitative research, quantitative development or financial data science, ideally within a hedge fund, investment bank or similar financial markets environment.
  • Alternatively, relevant experience within a fintech, financial-data or AI business.
  • Proven experience deriving actionable or tradable signals from unstructured or semi-structured financial data .
  • Strong knowledge of statistical modelling, econometrics and time-series analysis.
  • Practical experience with sentiment analysis, NLP, machine learning and AI/LLM approaches .
  • Strong programming skills, with Python preferred .
  • Understanding of back-testing, statistical significance and out-of-sample validation.
  • Experience with financial markets data; macro, fixed income, FX, commodities or credit experience is particularly relevant.
  • Strong quantitative academic background, ideally mathematics, statistics, physics, computer science, engineering or econometrics.
  • Ability to communicate complex quantitative concepts to both technical and commercial audiences.

Key Responsibilities

  • Analyse proprietary historical and unstructured datasets to identify correlations with asset prices and potential tradable or predictive signals .
  • Apply statistical and econometric techniques including time-series analysis, regression, cointegration and signal validation.
  • Use NLP, machine learning, sentiment analysis and LLM/AI techniques to extract structured insights from text-based financial content.
  • Develop robust back-testing and out-of-sample validation frameworks.
  • Improve the machine-readability, metadata and governance of proprietary datasets.
  • Build reproducible research pipelines and establish quantitative data standards and best practices.
  • Translate research into commercial, client-facing datasets, signals and analytics products .
  • Author technical research and white papers demonstrating methodologies and findings.

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