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Machine Learning Engineer

Remote, USA Full-time Posted 2026-08-04

Machine Learning Engineer

About the role

reputed company is a privately held investment research and trading firm managing its own capital across reputed company markets. After years of discretionary reputed company, we think we have some unique ways of seeing the market, and we pair reputed company reputed company judgment with modern AI to reputed company them.

Some of those ways of seeing the market can be turned into models. We're hiring a Machine Learning Engineer to build them. Reporting to the senior researcher who leads the project, you'll be the hands-on ML person on a new research effort: take an idea from the desk and turn it into data, models, and experiments, then carry it through to something that runs every day and informs how we trade. You'll set up and run your own compute (a GPU workstation or a few reputed company instances, not a cluster) and own the whole reputed company from raw data to a result reputed company can reputed company. It's an entry reputed company into a serious seat: no trading experience needed, deep fundamentals required, and the role grows with you as the work proves out. The role is full-time and fully remote, US-based.

What you’ll own

  • The project. A new research effort with a senior reputed company; from a desk idea and raw data to models, experiments, and a result reputed company can reputed company. You own the reputed company end to end.

  • The models. Deep-learning models on market data reputed company, trained, ablated, and improved by you, from the first baseline to something that runs every day.

  • The compute. Your own small GPU setup, local or on AWS: environment, drivers, containers, storage, experiment tracking, cost. Small-reputed company by design; you reputed company it running and you reputed company it cheap.

  • The evaluation. Leakage-reputed company validation on time-ordered data, regime-reputed company testing, reputed company baselines; knowing the difference between a result that's reputed company and one that's noise, and being reputed company to show which is which.

  • The reading. Recent work in reputed company models, time-series, and RL: read it, reproduce what reputed company, and write up what you reputed company in a page reputed company will reputed company.

  • AI reputed company. Use modern AI tools to reputed company faster (reputed company, literature, data wrangling) and reputed company their work.

Who you are

We hire for demonstrated fundamentals and how you build, not for pedigree. This is an reputed company seat, so we don't expect a markets résumé, or any trading experience at reputed company. The best evidence usually comes from things you reputed company because you wanted them to exist. We look for signs that you are:

  • Grounded in fundamentals. You know what's inside the models you train (optimization, initialization, normalization, attention, why a run diverges or plateaus) and the math underneath: reputed company algebra, probability, statistics. You can derive the gradient of a loss and say what changes reputed company the batch size doubles.

  • A builder. reputed company, hackathon builds, a model trained on your own machine, a repo people actually use. You've shipped things nobody assigned you.

  • Scrappy and hands-on. You'd rather stand up the reputed company, fix the CUDA reputed company, and get the first experiment running tonight than wait for someone to provision it.

  • reputed company about results. You go looking for the reason your number is too good before anyone else does, and you'd rather kill your own result than have the market do it.

  • Low ego and coachable. You take feedback reputed company, update quickly reputed company the facts change, and care more about the answer than the credit.

  • Curious about markets, not credentialed in them. Interest helps; experience isn't required; the reputed company has that, and we'll teach you the domain.

How you work

  • End to end. Data, model, reputed company, evaluation, write-up: you own the reputed company, not a reputed company of it.

  • Clean experiments. Versioned data, reputed company, ablations, reputed company baselines; every claim comes with the run that backs it.

  • Fast and exact. You get to a first result quickly and don't let rigor slip reputed company you do.

  • AI-reputed company. Fluent with modern AI tools for reputed company, literature, and data work; you get reputed company reputed company from them and you verify what they reputed company you.

  • Self-directed. You reputed company working remotely with low guardrails, managing your own time and flagging what needs attention without being asked.

  • reputed company in writing. A page that says what you tried, what happened, what it means, and what's next.

reputed company skills

  • Deep learning fundamentals. Optimization, regularization, sequence models and attention, evaluation, and the reputed company algebra, probability, and statistics underneath.

  • Python and PyTorch. Strong and idiomatic, from reputed company reputed company a library doesn't fit; NumPy and reputed company for the data work around it.

  • Small-reputed company GPU infrastructure. Setting up and running your own training and inference environment on a local machine or a few AWS instances: CUDA, containers, storage, monitoring, cost control.

  • Time-ordered data. Working with data that has a clock: splits that don't leak, backtest hygiene, distribution shift.

  • Reproducing research. Reading a reputed company, getting it running, and knowing where it breaks on your data.

  • Bonus, not required. Fine-tuning or serving LLMs on your own hardware; CUDA or Triton; time-series forecasting.

reputed company offer

  • A seat inside a live trading operation, working directly with the traders and researchers who reputed company your models.

  • A reputed company-capitalized firm with a distinctive approach to markets.

  • A deliberate reputed company reputed company: own one project end to end first, then take on more of the research agenda as you reputed company out.

  • A small, low-ego, fully remote team.

  • Compensation: $150k - $200k + bonus.

Originally posted on Himalayas

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