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Research Engineer — Applied Science; ML

Job in Greater London, London, Greater London, W1B, England, UK
Listing for: TimeTrace Labs Ltd.
Full Time position
Listed on 2026-07-26
Job specializations:
  • Software Development
    Machine Learning/ ML Engineer, Data Scientist
Salary/Wage Range or Industry Benchmark: 90000 - 120000 GBP Yearly GBP 90000.00 120000.00 YEAR
Job Description & How to Apply Below
Position: Research Engineer — Applied Science (ML)
Location: Greater London

Bridge the gap between cutting-edge AI research and practical application. You will own the design, training,and fine-tuning of advanced machine learning models to solve complex, domain-specific problems. We value engineering driven by first-principles thinking — someone who genuinely enjoys digging into the math of thelatest arXiv papers, exploring novel architectures, and rapidly translating theoretical breakthroughs into functional, high-performance prototypes.

What you'll do
  • Model architecture & design: research, design, and prototype deep learning architectures tailored to our data domain — generative models, geometric deep learning, large-scale transformers.
  • Experimental exploration: own rigorous experimental roadmaps — ablation studies, hyperparameter optimisation, and loss-function engineering.
  • Algorithmic & compute optimisation: integrate novel optimisations (custom attention, tokenisation, layer normalisation) with an eye on memory efficiency and training stability.
  • Data strategy & feature engineering: design representation, augmentation, and synthesis strategies for complex, constrained biological datasets.
  • Collaborative hand-off: partner with MLOps so prototypes are built for stability and transition cleanly into scaled production.
What we're looking for
  • Advanced ML & deep learning: deep theoretical and practical grasp of modern frameworks (PyTorch preferred), optimisation, and neural-network primitives.
  • Scientific computing & math: strong linear algebra, calculus, probability, and statistics; fluency with Num Py, Sci Py, and Pandas.
  • Research translation: read an academic paper, understand its mechanics, and reproduce or adapt it in clean, modular Python.
  • Software fundamentals: maintainable Python, Git, and rigorous testing with PyTest.
  • Experiment tracking: Weights & Biases, MLflow, or Tensor Board to document and reproduce dense training runs.
Nice to have

An advanced degree (MSc/PhD) in a quantitative field; experience with large-scale generative models orspatial, time-series, or geometric data; open-source contributions or publications at NeurIPS, ICML, ICLR, or CVPR.

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