AccueilRetour aux carrièresMachine Learning Researcher
Trading, Research & ML

Machine Learning Researcher

RemoteFull-timeSeniorPublié le: April 14, 2026

À propos du poste

Machine learning is not a feature at Uncharted Network — it is the core of our trading operation. As a Machine Learning Researcher, you will design and train the deep learning models that power our next-generation strategy layer, working on problems that sit at the intersection of large-scale model training and financial market prediction. Our environment is unusual: you will have a tight feedback loop between model iteration and live trading performance, so you will know quickly whether your ideas work. We draw from the full ML landscape — from sequence models and attention-based architectures to reinforcement learning and classical methods — and we are not ideological about tools.

Responsabilités

  • Train and evaluate deep learning models on financial time-series and alternative datasets for live strategy deployment
  • Explore novel modelling approaches including sequence models, reinforcement learning, and ensemble methods
  • Collaborate with ML Engineers to bring research-ready models into production training and inference pipelines
  • Design rigorous experiments, track results, and produce clear documentation of model behaviour under regime changes
  • Hire, mentor, and conduct technical reviews with fellow researchers and engineers
  • Engage with academic literature and conferences to bring state-of-the-art techniques into the firm

Exigences

  • Demonstrated research experience in empirical machine learning, with publications or equivalent project depth
  • Strong mathematical foundations: linear algebra, optimisation theory, probability theory, and statistics
  • Fluency in Python and at least one major ML framework (PyTorch, JAX, or TensorFlow)
  • Experience designing and running large-scale experiments with reproducible, well-documented results
  • Ability to apply logical and mathematical thinking across financial and non-financial problem domains
  • Excellent written communication; able to produce research memos for the investment committee

Un plus

  • Experience with non-stationary datasets, distributional shift, or multi-agent environment modelling
  • Prior work on financial time series, tick data, or order book prediction
  • Familiarity with distributed training across multi-GPU or multi-node GPU clusters
Ce que nous offrons
  • Significant UNT token allocation + competitive fiat salary
  • Fully remote, async-first research environment
  • Access to Uncharted's growing GPU cluster for training and experimentation at scale
  • Annual ML conference and research budget
  • High autonomy — ideas move from research notebook to live capital with minimal organisational overhead
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