Company OverviewSwish Analytics is a sports analytics, betting, and fantasy startup building the next generation of predictive sports data products. We believe that oddsmaking is a challenge rooted in engineering, mathematics, and sports expertise, not intuition. We are looking for team-oriented individuals with an authentic passion for accurate, predictive, real-time data who can execute in a fast-paced, creative, and continually evolving environment without sacrificing technical excellence.
Our challenges are unique, so we hope you are comfortable in uncharted territory and passionate about building high-performance pricing and trading systems.
Job DescriptionSwish is looking for a highly analytical Sports Trading Analyst to help strengthen and scale our sports pricing and trading operation.
In this role, you will work at the intersection of sports intelligence, quantitative modelling, pricing strategy, and live market behaviour. You will help manage and improve real-time pricing across a range of sports and market types, with a particular focus on market aware price discovery, risk management and the identification of actionable trading signals from market activity.
This role is suited to someone with strong quantitative reasoning, excellent decision-making under pressure, and a deep interest in how markets are formed, odds move, and how to engineer accurate pricing in the competitive sports betting environment.
You will work in a geographically dispersed team alongside experienced traders, quants, data scientists, and engineers, with colleagues based across Europe and the US.
Duties
Monitor live sports markets and market activity in real time across a range of sports and market types
Support the calibration and refinement of prices using market signals, statistical models, competitor benchmarking, and event-driven information
Help improve pricing quality through the analysis of market behaviour, price sensitivity, liquidity patterns, and reaction speed to new information
Contribute to the development, testing, and refinement of quantitative models by applying your understanding of live market dynamics and pricing behaviour
Own and manage real-time trading risk, including exposure monitoring, liability controls, and disciplined decision-making across concurrent events
Collaborate with engineering on trading and pricing infrastructure, including API integrations, automated monitoring, alerting, anomaly detection, and execution tooling
Work closely with Sports Trading teams to interpret breaking news, lineups, injuries, team news, and other event-specific developments to ensure timely and accurate price updates
Identify model discrepancies, edge cases, and structural inefficiencies in pricing workflows, escalating and documenting findings for Data Science and Data Engineering teams
Help evaluate market opportunities, prioritise resources across sports and competitions, and improve operational processes as the trading function scales
Detect sharp or informative market activity and ensure useful signals are fed back into Swish’s proprietary models and pricing systems
Communicate effectively with internal Sports Trading teams responsible for maintaining and improving our core sportsbook pricing models
Requirements
Bachelor’s degree or higher in a quantitative or analytical discipline (Mathematics, Statistics, Computer Science, Economics, Engineering, Quantitative Finance, or similar), or equivalent practical experience
Strong grounding in probability, statistics, and expected value, with the ability to reason clearly about fair price, uncertainty, and risk
Hands-on experience in sports trading, sports betting, exchange-style environments, market-making, quantitative trading, or other closely related domains where fast price formation and disciplined execution matter
Strong understanding of sports betting fundamentals, including odds formats (decimal, fractional, American), implied probability conversion, expected value, and closing line value
Demonstrated ability to make high-quality decisions under time pressure with incomplete information during live events
Comfortable working autonomously across global event schedules, including weekends and major tournament periods
Fluent in English, written and spoken, with clear communication skills in a distributed and asynchronous team environment
Preferred (but Not Essential)
Track record of building and backtesting quantitative models using real historical data; GitHub, notebooks, or demonstrable analytical work is highly valued
Deep domain knowledge across high-turnover sporting verticals such as NBA, NFL, and Soccer
Understanding of relational database systems (MySQL or equivalent) for analysis of prices, outcomes, and trading decisions
Familiarity with market microstructure concepts such as adverse selection, inventory risk, liquidity dynamics, queue positioning, or execution quality
Experience using Python for quantitative research, exploratory data analysis, prototyping, or model improvement
Experience using modern AI tools to accelerate analysis, research, and modelling workflows
Why JoinThis is an opportunity to play a meaningful role in a growing and well-resourced sports trading operation. The successful candidate will help shape process, tooling, and decision-making within a team focused on high-quality pricing, efficient execution, and long-term product excellence across multiple sports verticals.
Swish Analytics is an Equal Opportunity Employer. All candidates who meet the qualifications will be considered without regard to race, color, religion, sex, national origin, age, disability, sexual orientation, pregnancy status, genetic, military, veteran status, marital status, or any other characteristic protected by law. The position responsibilities are not limited to the responsibilities outlined above and are subject to change. At the employer’s discretion, this position may require successful completion of background and reference checks.
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