Company
FinTech
QuantitativeResearcher-PredictionMarkets,QuantTrading
Neural analysis suggests this role is
optimal for Mid+ candidates.
“Quantitative Researcher - Prediction Markets, Quant Trading. Skills: Quantitative research, Prediction markets, Quant trading, Data pipelines. Build data foundation. Transform raw data into pricing inputs”
Industry & Context.
What They're Looking For.
Must Have
Quantitative background in statistics, math, ML, economics, Experience building models in trading, sports, betting, prediction markets, Python/data skills, Comfort owning data pipelines, Comfort owning modeling, Ability to move quickly from raw data to research insight to production-ready mode, High ownership, Communication skills, Comfortable with fast-paced high growth environment
What You'll Do.
Build data foundation
Transform raw data into pricing inputs
Research quantitative pricing models
Develop quantitative pricing models
Research market-making models
Develop market-making models
Model cross-market dependencies
Model portfolio effects
Build frameworks for backtesting
Build frameworks for simulation
Build frameworks for model validation
Create tools to monitor model performance
Create tools to monitor calibration
Create tools to monitor P&L attribution
Create tools to monitor live trading outcomes
Define tooling for new team
Define workflow for new team
Define research standards for new team
How You'll Work.
Team & Collaboration
Close collaboration with traders
Full Job Description
## Description We’re building a new quantitative research team focused on pricing, market-making, and risk models for prediction markets. This is a highly hands-on role for someone who can operate end-to-end: data engineering, research, modeling, and close collaboration with traders, across sports and non-sports event markets and a range of contract types, including single-outcome markets, player props, and parlays. ## Responsibilities Build data foundation, transform raw data into pricing inputs Research and develop quantitative pricing, market-making, and risk models across sports, non-sports, player props, parlays, and correlated markets Model cross-market dependencies, correlations, and portfolio effects, especially for combinatorial products such as parlays Partner closely with traders to improve pricing logic, market coverage, and trading performance Build frameworks for backtesting, simulation, and model validation Create tools to monitor model performance, calibration, P&L attribution, and live trading outcomes Help define the tooling, workflow, and research standards for a new team ## Requirements Strong quantitative background in statistics, math, ML, economics, or a related field Experience building models in trading, sports, betting, prediction markets, or similar domains Strong Python/data skills and comfort owning data pipelines as well as modeling Ability to move quickly from raw data to research insight to production-ready mode High ownership, strong communication skills and comfortable with fast-paced high growth environment
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