Jobs · Finance · New York

Graduate Quantitative Developer

DeepFin Research · New York, NY · 2 mo ago
On-siteFinanceFull-time

Role Overview

We’re hiring a junior Quant Developer to help productionise research into robust, high-performance trading systems. You’ll work closely with Quant Researchers and senior engineers to convert Python research code into production C++, build and optimise backtesting / simulation infrastructure, and support strategy development using L3 market data across multiple venues.

Key Responsibilities

  • Productionise research models into C++: translate Python prototypes into efficient, maintainable C++ production code.
  • Backtesting & simulation: build and improve simulation systems that reflect real market mechanics (order book, fills, cancels, exchange rules).
  • L3 market data handling: ingest and process high-volume tick/order-level feeds; create reliable feature pipelines from raw exchange data.
  • Performance optimisation: improve latency and throughput of backtests/sims (profiling, memory optimisation, data structures, parallelism where appropriate).
  • Research support tooling: create utilities for data inspection, experiment tracking, run orchestration, and post-trade analytics in Python.
  • Debugging & correctness: investigate mismatches between simulation and production behaviour; diagnose edge cases and implement fixes with strong test coverage.
  • Cross-team collaboration: work daily with researchers and infra/exec engineers to ship improvements from idea → test → production.

Requirements

  • Education: Bachelor’s or Master’s from a top university in Computer Science, Engineering, Math, Physics, or similar.
  • Experience: 0-3 years experience in quantitative finance or other relevant data-intensive industries working with C++.
  • Strong working knowledge of C++ (memory, ownership, STL, performance-aware coding).
  • Experience: demonstrable evidence of hands-on systems work in C++ handling large-scale data (internships, research labs, competitive projects, open-source).
  • Comfortable with Python for analysis, tooling, and debugging (pandas/numpy/Jupyter a plus).
  • Exposure to quantitative finance, eg through internships/university societies, including market microstructure and L3/order book data.
  • Clear “builder mindset”: you like owning problems end-to-end, shipping incrementally, and iterating quickly.

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