Junior Quantitative Researcher - Machine Learning - Hedge Fund

Tempest Vane Partners

Greater London

On-site

GBP 60,000 - 90,000

Full time

35 hours ago
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Benefits offered by this job

Pension
Private healthcare
Life assurance
Performance bonus

Job summary

Tempest Vane Partners in London seeks a junior Quantitative Researcher with a strong background in predictive machine learning to join an established research team. You will apply advanced statistical and machine-learning techniques to financial data in a collaborative, research-led environment.

You will work alongside top researchers, ML specialists and software engineers, contributing to the complete strategy-development lifecycle from hypothesis to live trading, with mentoring and career

Qualifications

  • Master's or PhD in ML, CS or STEM field.
  • Strong knowledge of modern ML methods and statistics.
  • Experience developing predictive models via research or internships.
  • Experience with large, complex datasets and model validation.

Responsibilities

  • Conduct original research on predictive ML within systematic trading.
  • Analyze large, noisy datasets to identify patterns forecasting market behavior.
  • Develop, train and validate statistical and ML models for return prediction and signals.
  • Research techniques including supervised learning, regularisation, feature selection and ensemble modeling.
  • Design robust experiments and backtests considering overfitting and market conditions.
  • Investigate new datasets and develop features to improve models.
  • Collaborate with researchers and engineers to deploy models in production research and trading systems.
  • Monitor model behavior and identify performance improvements.
  • Stay current with ML, statistics and quantitative finance developments.

Skills

Predictive ML
Python
Statistics
Experimental design
Data analysis
Model validation

Education

Master's degree (ML/CS)
PhD in ML/CS

Tools

Python (NumPy/SciPy)
Scikit-learn
Pandas

Job description

My client is a highly successful quantitative trading firm headquartered in London. The business has an exceptional long-term track record of developing systematic strategies across multiple asset classes, geographies and trading horizons.

They are looking for a talented junior Quantitative Researcher with a strong background in predictive machine learning to join one of their established research teams. This is an outstanding opportunity for an early-career researcher to apply advanced statistical and machine-learning techniques to complex financial data in a highly collaborative, research-led environment.

What You'll Get
  • An opportunity to begin your career at one of London's most successful and highly regarded quantitative trading firms.
  • The chance to work alongside exceptional quantitative researchers, machine-learning specialists and software engineers.
  • A highly collaborative environment with a strong emphasis on mentoring, learning and intellectual development.
  • Access to industry-leading proprietary datasets, research tools and computing infrastructure.
  • The freedom to conduct original research and explore innovative modelling techniques.
  • Exposure to the complete strategy-development lifecycle, from initial hypothesis through to live trading.
  • Excellent career progression, with the opportunity to take increasing ownership of research projects and systematic strategies.
  • A market-leading compensation package, including a generous base salary and performance-related bonus.
  • A comprehensive benefits package, including pension, private healthcare and life assurance.
What You'll Do
  • Conduct original research into the application of predictive machine learning within systematic trading.
  • Analyse large, complex and noisy datasets to identify patterns capable of forecasting financial-market behaviour.
  • Develop, train and validate statistical and machine-learning models for return prediction, signal generation and market forecasting.
  • Research techniques including supervised learning, regularisation, feature selection, representation learning and ensemble modelling.
  • Design robust experiments and backtests that account for overfitting, non-stationarity, transaction costs and changing market conditions.
  • Investigate new datasets and develop features that improve the predictive performance of existing models.
  • Work closely with experienced quantitative researchers and engineers to implement successful models within the firm’s production research and trading systems.
  • Monitor model behaviour and investigate opportunities to improve performance, robustness and scalability.
  • Stay current with relevant developments in machine learning, statistics and quantitative finance.
What You'll Need
  • A Master's or PhD from a leading university in Machine Learning, Computer Science, or another STEM discipline.
  • Strong knowledge of modern machine-learning methods and the mathematical principles underlying them.
  • Experience developing predictive models through academic research, internships or an early-career role.
  • A rigorous understanding of statistics, probability, experimental design and model validation.
  • Experience working with large, complex or high-dimensional datasets.
  • Strong programming skills in Python and familiarity with relevant numerical and machine-learning libraries.
  • The ability to translate theoretical ideas into carefully designed empirical research.
  • A genuine interest in applying machine learning to financial markets; previous professional finance experience is advantageous but not essential.
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