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Computer Science Data Science Jobs in San Diego, CA

Data Scientist, Staff

San Diego, CA · On-site

$142.10 - $213.10/hr

Bachelor's degree in Computer Science, Data Science, Machine Learning, Statistics, Mathematics, or related field. * 5+ years of Data Science or related work experience. * Completed advanced degrees ...

Data Scientist, Staff

San Diego, CA · On-site

$142K - $213K/yr

Bachelor's degree in Computer Science, Data Science, Machine Learning, Statistics, Mathematics, or related field. 5+ years of Data Science or related work experience. *Completed advanced degrees in a ...

Data Scientist, Staff

San Diego, CA · On-site

$142K - $213K/yr

Minimum Qualifications: • Bachelor's degree in Computer Science, Data Science, Machine Learning, Statistics, Mathematics, or related field. • 5+ years of Data Science or related work experience.

Bachelor's degree in computer science, data science, statistics, applied mathematics or related field Years of Experience * 5 years of relevant experience in applying data science techniques to ...

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Computer Science Data Science information

See San Diego, CA salary details

$39.8K

$130.3K

$208.6K

How much do computer science data science jobs pay per year?

As of Aug 20, 2026, the average yearly pay for computer science data science in San Diego, CA is $130,313.00, according to ZipRecruiter salary data. Most workers in this role earn between $104,600.00 and $144,400.00 per year, depending on experience, location, and employer.

Can a computer science data scientist work as a data scientist?

A computer science data scientist can work as a data scientist because both roles involve analyzing data, developing algorithms, and using tools like Python or R. The main difference is that a data scientist often focuses more on statistical analysis and data visualization, while a computer science data scientist may have a stronger background in software development and machine learning. Skills in programming, data manipulation, and understanding of algorithms are essential for both positions.

Is a computer science data science degree good for data science?

A computer science data science degree provides a strong foundation in programming, algorithms, and data analysis, which are essential skills for data science roles. It often includes coursework in machine learning, statistics, and data management, making it well-suited for entry-level and advanced data science positions. Practical experience with tools like Python, R, and SQL can further enhance job prospects in the field.

What are popular job titles related to Computer Science Data Science jobs in San Diego, CA?

For Computer Science Data Science jobs in San Diego, CA, the most frequently searched job titles are:

What job categories do people searching Computer Science Data Science jobs in San Diego, CA look for?

The top searched job categories for Computer Science Data Science jobs in San Diego, CA are:

What cities near San Diego, CA are hiring for Computer Science Data Science jobs?

Cities near San Diego, CA with the most Computer Science Data Science job openings:

Infographic showing various Computer Science Data Science job openings in San Diego, CA as of August 2026, with employment types broken down into 1% As Needed, 84% Full Time, 12% Part Time, and 3% Contract. Highlights an 86% Physical, 4% Hybrid, and 10% Remote job distribution, with an average salary of $130,313 per year, or $62.7 per hour.

Data Scientist, D2C Data Science

PlayStation Global

San Diego, CA

Full-time

Re-posted 17 days ago


Job description

Data Scientist, D2C Data Science 

San Diego, CA  (Hybrd)

About the Team 

The Direct to Consumer (D2C) Data Science organization brings together Data Science, Data Engineering, and ML Engineering to support PlayStation's digital business across commerce, payments, subscriptions, lifecycle experiences, and player-facing services. We partner closely with product, engineering, finance, marketing, operations, and data teams to turn experimentation, forecasting, modeling, and production-quality measurement into better decisions and better player experiences. 

About The Role 

We are looking for a Data Scientist to join a focused team within D2C Data Science supporting payment and subscription experiences across PlayStation's direct-to-consumer business. This is a hands-on role for someone who can use statistics, machine learning, experimentation, and strong data judgment to help teams make better decisions about how players pay, subscribe, and move through global payment flows. 

The initial portfolio is expected to focus on payment method performance, payment flow optimization, subscription payment recovery, and ROI-based evaluation of experiments and business interventions. You will help teams understand customer behavior, payment success, cost and routing tradeoffs, and the business impact of new payment capabilities. 

Our team values practical scientific rigor: clear decision framing, trusted reusable metrics, transparent uncertainty, and recommendations that help teams move faster without sacrificing measurement quality. This role is best suited for someone who can independently own well-scoped analyses and models, work through ambiguity, and translate complex data into recommendations that improve customer experience and business performance. 

Responsibilities 

  • Apply data science methods to high-impact questions across D2C payments, subscriptions, commerce, lifecycle, and player experience. 
  • Design, analyze, and interpret A/B tests, holdouts, quasi-experimental analyses, and other measurement approaches with clear hypotheses, metrics, and decision criteria. 
  • Analyze payment and subscription outcomes such as payment success, authorization performance, payment funnel behavior, routing or retry performance, cost tradeoffs, and subscription recovery. 
  • Build statistical and machine learning models for forecasting, segmentation, propensity, retention, payment success, payment optimization, subscription outcomes, or offer performance. 
  • Use SQL and Python to prepare data, validate assumptions, analyze behavior, and produce reproducible analytical workflows. 
  • Partner with product, engineering, finance, marketing, operations, and data engineering teams to ensure analyses are technically sound, actionable, and operationally useful. 
  • Communicate findings with clear recommendations, confidence levels, caveats, tradeoffs, next steps, and reusable documentation that supports better decision-making. 

Basic Qualifications 

  • 3+ years of professional experience in data science or machine learning 
  • Bachelor's degree in statistics, mathematics, computer science, engineering, data science, or a related quantitative field or equivalent  
  • Strong SQL and Python skills for data extraction, data validation, analysis, modeling, and reproducible workflows. 
  • Solid foundation in statistics, experimental design, machine learning, predictive modeling. 
  • Experience applying data science methods to ambiguous commercial, customer, payment, subscription, or operational problems. 
  • Ability to communicate technical findings clearly to technical and non-technical partners. 

Preferred Qualifications 

  • Experience with digital commerce, payments, billing, subscriptions, fintech, marketplaces, gaming, media, or scaled consumer technology businesses. 
  • Experience with payment method performance, authorization or success-rate analysis, payment optimization, routing or retry strategies, cost analysis, payment telemetry, or subscription recovery. 
  • Experience designing, running, or analyzing experiments, including A/B tests, holdouts, quasi-experimental approaches, or causal inference methods. 
  • Experience with forecasting, customer segmentation, churn / retention modeling, offer measurement, payment success modeling, subscription lifecycle analytics, or ROI-based business evaluation. 
  • Experience working with large-scale data environments such as Snowflake, Databricks, Spark, BigQuery, or similar platforms, and familiarity with metric layers or source-of-truth datasets.Â