Tower Research Capital

Machine Learning Research Engineer

Tower Research Capital New York, New York, United States · $200K–$300K/yr

Financial Services · 1,001-5,000 employees

5 h ago
machine-learning Senior (5-10 yrs) Full-time United States
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About the role

The role involves acting as the primary feedback loop for the ML stack by benchmarking infrastructure and validating complex models through the full pipeline. You will also build high-level abstractions to streamline prototyping and leverage AI agents to stress-test distributed clusters.

What they look for

Python Machine Learning PyTorch TensorFlow Distributed Computing Ray Dask System Profiling Performance Benchmarking Software Engineering API Development LLM Tooling Agentic Frameworks Hardware Acceleration Data Pipelines

Requirements

Candidates must have a strong software engineering foundation with deep proficiency in Python and hands-on experience with modern machine learning frameworks. Experience in scaling ML workloads across GPUs and multi-node clusters is required, along with the ability to debug system bottlenecks.

Benefits

Paid time off Savings plans Financial wellness tools Hybrid working opportunities Free breakfast Free lunch Free snacks Wellness experiences Wellness reimbursement Sports teams Fitness events Volunteer opportunities Charitable giving Social events Workshops Continuous learning

Full description

Tower Research Capital is a leading quantitative trading firm founded in 1998. Tower has built its business on a high-performance platform and independent trading teams. We have a 25+ year track record of innovation and a reputation for discovering unique market opportunities.

Tower is home to some of the world’s best systematic trading and engineering talent. We empower portfolio managers to build their teams and strategies independently while providing the economies of scale that come from a large, global organization.

Engineers thrive at Tower while developing electronic trading infrastructure at a world class level. Our engineers solve challenging problems in the realms of low-latency programming, FPGA technology, hardware acceleration and machine learning. Our ongoing investment in top engineering talent and technology ensures our platform remains unmatched in terms of functionality, scalability and performance.

At Tower, every employee plays a role in our success. Our Business Support teams are essential to building and maintaining the platform that powers everything we do — combining market access, data, compute, and research infrastructure with risk management, compliance, and a full suite of business services. Our Business Support teams enable our trading and engineering teams to perform at their best.

At Tower, employees will find a stimulating, results-oriented environment where highly intelligent and motivated colleagues inspire each other to reach their greatest potential.

Summary:

As an AI/ML Applied Research Engineer, you will sit at the cutting-edge intersection of our central machine learning infrastructure and our research teams. Your core mandate is to act as "Customer Zero" for our internal ML Research platform.

You will focus on expanding our ML research platform to benchmark, rapidly prototype, and stress-test both software and hardware layers across our entire distributed ML stack. By leveraging AI agents and auto-research capabilities, you will push our systems to their limits, identify bottlenecks, and create a frictionless environment to test novel machine learning models on realistic, large-scale data.

Ultimately, by hands-on testing these systems yourself, you will act as a technical advisor. You will share insights on research progress, evaluate how new ideas fare in practice, and help guide the strategic direction of our central engineering efforts.

Responsibilities:

  • Platform Validation & Infrastructure Benchmarking:
  • Serve as the primary feedback loop for the entire ML stack.
  • Actively run complex models through our full ML pipeline to comprehensively test both the training and inference environments.
  • Validate the central infrastructure in practice, seeing exactly how new research ideas fare and identifying system bottlenecks before broader rollout to research teams.
  • Streamline Rapid Prototyping for ML Research:
  • Build high-level abstractions that allow users to bypass setup friction.
  • Integrate our core ML tooling directly with our underlying simulation and data frameworks, providing a unified entry point to access our full tech stack.
  • Enable rapid iteration on real-world data and seamless distributed training via Ray.
  • Agentic Workflows for ML Research:
  • Leverage AI agents and auto-research workflows to autonomously generate experiments, stress-test our distributed clusters, and provide data-driven, actionable feedback on what infrastructure needs to be optimized or built next.
  • Research Platform Feedback & Insights Sharing:
  • Act as the critical bridge between infrastructure builders and ML researchers.
  • Be the first to exhaustively test new models and push the platform's limits.
  • Document and publish empirical findings on system capabilities and hardware performance.
  • Take your validated insights to assist engineering teams with platform improvements and advise researchers on how to best leverage the stack.

Qualifications:

  • Strong Software Engineering Foundation:
  • Deep proficiency in Python and software design principles.
  • Ability to build clean, scalable APIs and abstractions that other developers and researchers are enthusiatic about using.
  • Applied Machine Learning:
  • Hands-on experience with modern frameworks (PyTorch, TensorFlow, etc.)
  • Strong practical understanding of how to train, evaluate, and deploy models at scale.
  • Distributed Compute:
  • Experience scaling ML workloads across GPUs and multi-node clusters using frameworks like Ray, Dask, or PyTorch Distributed.
  • AI Agent Workflows:
  • Familiarity with LLM tooling, agentic frameworks, and using AI to automate coding, research, or testing tasks.
  • System Profiling & Optimization:
  • Ability to debug and identify bottlenecks across hardware and software layers (e.g., memory limits, GPU utilization, data pipeline latency).

Nice to Have:

  • Previous experience working in quantitative finance or complex algorithmic research environments.
  • Familiarity with large-scale time-series data, simulation engines, or performance benchmarking.
  • A proven track record of bridging the gap between systems engineering and applied machine learning research.

Anticipated annual base salary range $200,000-$300,000, plus eligible for discretionary bonus.

Tower’s headquarters are in the historic Equitable Building, right in the heart of NYC’s Financial District and our impact is global, with over a dozen offices around the world.

At Tower, we believe work should be both challenging and enjoyable. That is why we foster a culture where smart, driven people thrive – without the egos. Our open concept workplace, casual dress code, and well-stocked kitchens reflect the value we place on a friendly, collaborative environment where everyone is respected, and great ideas win.

Our benefits include:

  • Generous paid time off policies
  • Savings plans and other financial wellness tools available in each region
  • Hybrid working opportunities
  • Free breakfast, lunch, and snacks daily
  • In-office wellness experiences and reimbursement for select wellness expenses (e.g., gym, personal training and more)
  • Company-sponsored sports teams and fitness events (JPM Corporate Challenge, Cycle for Survival, Wall Street Rides FAR and more)
  • Volunteer opportunities and charitable giving
  • Social events, happy hours, treats, and celebrations throughout the year
  • Workshops and continuous learning opportunities

At Tower, you’ll find a collaborative and welcoming culture, a diverse team and a workplace that values both performance and enjoyment. No unnecessary hierarchy. No ego. Just great people doing great work – together.

Tower Research Capital is an equal opportunity employer.

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