Quantitative Sports Trading information
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$98K - $112.7K
15% of jobs
$112.7K - $127.4K
7% of jobs
$132K is the 25th percentile. Wages below this are outliers.
$127.4K - $142K
9% of jobs
$142K - $156.7K
14% of jobs
The median wage is $163.4K / yr.
$156.7K - $171.4K
12% of jobs
$171.4K - $186.1K
14% of jobs
$192.1K is the 75th percentile. Wages above this are outliers.
$186.1K - $200.8K
12% of jobs
$200.8K - $215.5K
7% of jobs
$215.5K - $230.1K
5% of jobs
$230.1K - $244.8K
5% of jobs
$244.8K - $259.5K
0% of jobs
How much do quantitative sports trading jobs pay per year?
As of Aug 14, 2026, the average yearly pay for quantitative sports trading in the United States is $169,729.00, according to ZipRecruiter salary data. Most workers in this role earn between $134,500.00 and $199,000.00 per year, depending on experience, location, and employer.
Quantitative sports traders often encounter challenges such as rapidly changing data, unpredictable events (like player injuries), and market inefficiencies that can impact model accuracy. Staying ahead requires constant model refinement, backtesting, and adapting strategies to new information. Additionally, traders must collaborate closely with data scientists and software engineers to ensure models are both robust and scalable in a high-pressure, time-sensitive environment.
Quantitative sports trading involves using mathematical models, statistical analysis, and data-driven strategies to predict outcomes and make informed bets or trades in sports markets. Professionals in this field analyze large datasets, create algorithms, and develop automated systems to identify value and manage risk. This approach is similar to quantitative trading in financial markets but is applied to sports betting exchanges and sportsbooks. The goal is to consistently find profitable opportunities while minimizing losses.
To thrive as a Quantitative Sports Trader, you need strong mathematical, statistical, and analytical skills, often supported by a degree in mathematics, statistics, finance, or a related field. Proficiency with programming languages like Python or R, experience with data modeling tools, and familiarity with betting exchanges or proprietary trading platforms are typically required. Exceptional problem-solving abilities, attention to detail, and the capacity to make quick, data-driven decisions under pressure are crucial soft skills. These competencies enable traders to develop profitable strategies, manage risk effectively, and adapt to the fast-paced, dynamic environment of sports markets.
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