Machine Leaming Engineer - Applied ML for Trading Signals

Millennium Management

New York City, USonsite$150k-$200k/yrPosted Jun 8, 2026
Posting intelligenceActively listed

Skills

scikitlearntimeseriespandaspythonnumpyc++ml

About the role

Machine Leaming Engineer - Applied ML for Trading Signals

Please direct all resume submissions to QuantTalentUS@mlp.com and reference REQ-29603 in the subject

Overview

We are seeking an applied ML engineer to develop, optimize, and deploy machine learning models for alpha generation within a newly formed systematic equities pod deploying intraday mean reversion and microstructure strategies.

The focus is on tree-based ensemble methods (LightGBM, XGBoost, CatBoost) and classical ML pipelines applied to high-frequency financial data. You will work closely with the Portfolio Manager and quantitative researchers to tum ML models into live trading signals.

Principal Responsibilities

Develop and optimize tree-based ensemble models (LightGBM, XGBoost, CatBoost) for intraday alpha prediction

Design and implement end-to-end ML pipelines: feature engineering, training, validation, deployment, and monitoring

Build robust cross-validation frameworks adapted to financial time-series (purged k-fold, walk-forward)

Engineer features from market microstructure data: order flow imbalance, spread dynamics, volume patterns, cross-asset signals

Implement model explainability tools (SHAP, feature importance) to understand and validate signal sources

Optimize model inference for low-latency production deployment

Monitor model performance in production: detect drift, staleness, and regime changes

Collaborate with the C++ developer to integrate ML predictions into the real-time trading engine

Experiment with TabPFN and other rapid-prototyping tools for fast signal discovery

Required Skills / Qualifications

Master's degree in Computer Science, Statistics, Mathematics, Machine Learning, or a related quantitative field

3+ years of experience building and deploying ML models in a production environment, preferably In finance

Deep expertise in tree-based ensemble methods: LightGBM, XGBoost, CatBoost

including hyperparameter tuning, regularization, and feature selection

Strong programming skills in Python with proficiency in scikit-learn, Polars/Pandas, NumPy

Strong understanding of overfitting, data leakage, and proper evaluation methodology for financial time-series

Strong analytical thinking, attention to detail, and intellectual curiosity

Excellent communication skills and ability to explain model behavior to non-ML stakeholders

Familiarity with Al-assisted development tools (Cursor, Claude Code)

Preferred Skills / Experience

Experience with financial market data (tick data, order book, corporate actions)

Knowledge of market microstructure and intraday trading dynamics

Millennium offers a total compensation package which includes a base salary, discretionary performance bonus, and comprehensive benefits. The estimated base salary range for this position is $150,000 to $200,000, which is specific to New York and may change in the future. When finalizing an offer, we take into consideration an individual’s experience level and the qualifications they bring to the role to formulate a competitive total compensation package.

Compensation

This Software Engineer role pays $150k-$200k/yr. Within typical range for software engineer roles in United States.

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