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Binance

Data Scientist, NLP & Trading Strategies (Quantitative)

Binance, Peru, Illinois, United States, 61354

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Binance is a leading global blockchain ecosystem behind the world’s largest cryptocurrency exchange by trading volume and registered users. We are trusted by over 280 million people in 100+ countries for our industry-leading security, user fund transparency, trading engine speed, deep liquidity, and an unmatched portfolio of digital-asset products. Binance offerings range from trading and finance to education, research, payments, institutional services, Web3 features, and more. We leverage the power of digital assets and blockchain to build an inclusive financial ecosystem to advance the freedom of money and improve financial access for people around the world.

About the Role As a Data Scientist focusing on Quantitative Trading NLP, you will leverage natural language understanding techniques such as

sentiment analysis, intent recognition, and named-entity extraction

on financial news, social media, and other text streams to develop and refine algorithmic trading strategies.

You’ll design and implement machine-learning models in Python, apply advanced mathematical and time-series analysis to uncover predictive signals, and rigorously backtest and optimize strategies to maximize returns while managing risk. Collaboration and clear communication across data science and trading teams are key to iteratively improving model performance and driving data-informed investment decisions.

Responsibilities

Research and develop quantitative trading strategies using NLU methods such as sentiment analysis, intent recognition, named-entity extraction on financial news, social media, and other text sources

Design and build machine-learning models to uncover predictive trading signals and perform exploratory data analysis on large, complex datasets

Apply mathematical techniques (probability, statistics, time-series analysis) to refine and strengthen trading models

Rigorously backtest strategies against historical data and iteratively optimise models to boost performance and curb risk

Requirements

At least 2 years of relevant experience

in data science, machine learning, or natural language processing

Bachelor’s or Master’s degree in Computer Science, Mathematics, Statistics, Financial Engineering, or a related discipline

Strong mathematical foundation: probability, statistics, linear algebra, time-series analysis, and familiarity with ML frameworks (Scikit-learn, TensorFlow, PyTorch)

Solid grasp of NLU techniques, including sentiment analysis, intent recognition, and named-entity recognition

Proficiency in Python or R, with hands‑on experience in NLP libraries (SpaCy, NLTK, Transformers)

A passion for exploring undefined problem spaces in the fast-changing crypto world

Why Binance

Shape the future with the world’s leading blockchain ecosystem

Collaborate with world‑class talent in a user‑centric global organization with a flat structure

Tackle unique, fast‑paced projects with autonomy in an innovative environment

Thrive in a results‑driven workplace with opportunities for career growth and continuous learning

Competitive salary and company benefits

Work‑from‑home arrangement (the arrangement may vary depending on the work nature of the business team)

Binance is committed to being an equal opportunity employer. We believe that having a diverse workforce is fundamental to our success.

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