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Food Data Scientist Jobs (NOW HIRING)

About Grubhub At Grubhub, we believe food is more than just a meal: It's a source of discovery ... As a Senior Staff Data Scientist, you will go beyond individual problem solving - you will help ...

About Grubhub At Grubhub, we believe food is more than just a meal: It's a source of discovery ... As a Senior Staff Data Scientist, you will go beyond individual problem solving - you will help ...

Data Scientist

The Woodlands, TX · On-site

$111K - $112K/yr

Data Scientist The Woodlands, TX, United States req29449 What you will enjoy doing* (DUTIES ... food & beverage, electronics, healthcare, manufacturing, metals & mining. Linde's industrial gases ...

Lead AI & Data Scientist

$150K - $170K/yr

From food and supplement manufacturers to retail grocers and restaurant chains, more than 2,500 ... Lead AI & Data Scientist FLSA: Full Time | Exempt | Salaried | Remote (US) Reports to: Chief ...

About Grubhub At Grubhub, we believe food is more than just a meal: It's a source of discovery ... As a Senior Staff Data Scientist, you will go beyond individual problem solving - you will help ...

... food they love and more time to enjoy it together. Where others see a simple need for grocery ... Roles are open at both the L5 (Senior Data Scientist I) and L6 (Senior Data Scientist II) levels.

Supply Chain Data Scientist

Omaha, NE · Hybrid

$63K - $93K/yr

Reporting to the Manager of Data Science, you will help build advanced data and analytics products ... Our focus on innovation extends beyond making great food, it also reflects our commitment to ...

Bring your flavor Building the future of food and well-being starts with you. Join our team and ... Define and implement the overarching data science and AI architecture and technical strategy for a ...

Reporting to the Manager of Data Science, you will help build advanced data and analytics products ... Our focus on innovation extends beyond making great food, it also reflects our commitment to ...

... food for all -while minimizing the use of land and other agricultural inputs. Syngenta Crop ... Syngenta's P&S Digital Productivity & Innovation NA team, is seeking a Supply Chain Data Scientist ...

Bring your flavor Building the future of food and well-being starts with you. Join our team and ... Define and implement the overarching data science and AI architecture and technical strategy for a ...

Lab37 Robotics is a technology company focused on the development and deployment of robots for food production. The Data Scientist will own forecasting, analysis, and optimization models to turn ...

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Food Data Scientist information

See salary details

$37.5K

$122.7K

$196.5K

How much do food data scientist jobs pay per year?

As of Jun 9, 2026, the average yearly pay for food data scientist in the United States is $122,738.00, according to ZipRecruiter salary data. Most workers in this role earn between $98,500.00 and $136,000.00 per year, depending on experience, location, and employer.

What is the difference between Food Data Scientist vs Food Analyst?

AspectFood Data ScientistFood Analyst
Required CredentialsDegree in Data Science, Statistics, or related field; knowledge of programming languages like Python or RDegree in Food Science, Nutrition, or related field; analytical skills
Work EnvironmentData-driven projects, research labs, or R&D departmentsQuality control, product testing, or market research in food companies
Employer & Industry UsageFood manufacturing, research institutions, tech companiesFood production, retail, government agencies

Food Data Scientists focus on analyzing large datasets to optimize food products and processes, while Food Analysts primarily evaluate food quality, safety, and compliance. Both roles are essential in the food industry but differ in their core responsibilities and skill sets.

What are Food Data Scientists?

Food Data Scientists are professionals who use data analysis, machine learning, and statistical methods to solve problems in the food industry. They analyze large datasets from sources like food production, quality control, consumer preferences, and supply chains to optimize processes, improve food safety, and develop new products. Their work helps companies make data-driven decisions on product development, marketing, and resource management, ultimately enhancing efficiency and innovation in the food sector.

What are the key skills and qualifications needed to thrive as a Food Data Scientist, and why are they important?

To thrive as a Food Data Scientist, you need a strong background in statistics, data analysis, and food science, typically supported by a relevant degree such as food technology, data science, or a related field. Proficiency with programming languages like Python or R, machine learning frameworks, and data visualization tools is essential, along with experience using food industry databases. Strong analytical thinking, problem-solving abilities, and effective communication skills help you interpret complex data and present actionable insights to diverse stakeholders. These skills are crucial because they enable you to drive innovation, ensure food quality, and support data-driven decision-making in the food industry.

How does a Food Data Scientist typically collaborate with cross-functional teams in the food industry?

Food Data Scientists often work closely with product developers, nutritionists, quality assurance teams, and marketing professionals. Their role involves analyzing large datasets to uncover trends in consumer preferences, ingredient performance, and supply chain efficiency. Effective communication is key, as they must translate complex data findings into actionable insights for colleagues who may not have a technical background. This collaborative environment fosters innovation and ensures that data-driven decisions positively impact product development and business strategies.
More about Food Data Scientist jobs
What cities are hiring for Food Data Scientist jobs? Cities with the most Food Data Scientist job openings:
What states have the most Food Data Scientist jobs? States with the most job openings for Food Data Scientist jobs include:
Infographic showing various Food Data Scientist job openings in the United States as of May 2026, with employment types broken down into 18% Full Time, and 82% Part Time. Highlights an 99% Physical, and 1% Remote job distribution, with an average salary of $122,738 per year, or $59 per hour.
Senior Staff Data Scientist

Senior Staff Data Scientist

Grubhub

Chicago, IL • On-site

Full-time

Medical, Dental, Vision, Retirement

Posted 6 days ago


Grubhub rating

6.7

Company rating: 6.7 out of 10

Based on 11 frontline employees who took The Breakroom Quiz

9th of 22 rated food delivery companies


Job description

About Grubhub

At Grubhub, we believe food is more than just a meal: It's a source of discovery, connection, and pure enjoyment. There's a time and place for every type of dish, from hidden neighborhood gems to tried-and-true favorites, and we exist to connect people with the food they love in all the ways they like to dig in. We've been at it since 2004, but now, as part of Wonder, Grubhub is operating with a renewed sense of momentum and the high-velocity energy of a powerhouse startup.

As a leading U.S. ordering and delivery marketplace, we feature over 415,000 merchants in more than 4,000 cities, creating the ultimate food experience by elevating online ordering through innovative restaurant technology, easy-to-use platforms, and an improved delivery experience. We are constantly finding new ways to innovate-from integrated grocery delivery with groceries powered by Instacart to exclusive loyalty programs. Join our team, based out of New York City, Chicago and Denver, and help us give our diners the exceptional value they deserve.

About the Opportunity

At Wonder Data Science, our mission is to build data science and machine learning systems that improve how our marketplace operates, how customers experience the platform, and how the business makes high-quality decisions. As a Senior Staff Data Scientist, you will go beyond individual problem solving - you will help shape the strategic direction of applied data science, mentor senior and junior scientists, and collaborate closely with engineering, product, operations, and business leaders to move our ML and analytics capabilities toward scalable, production-grade systems.

You will identify high-leverage opportunities across the business, including marketplace efficiency, customer experience, ETA accuracy, fulfillment reliability, pricing strategy, supply planning, demand forecasting, and operational performance. You will design statistically rigorous frameworks to understand causal impact, separate signal from noise, and guide business strategy through experimentation, measurement, and principled inference.

You will help define how we structure trade-offs like customer experience vs. operational efficiency, speed vs. cost, prediction accuracy vs. business impact, short-term metric movement vs. long-term marketplace health, and automation vs. human judgment. You'll prototype, experiment, influence architecture, and ensure we operationalize models and insights that actually move business metrics - not just analyses that look good offline.

The Impact You Will Make

  • Serve as a technical thought leader in Data Science - defining principles, frameworks, and best practices for how Wonder uses data, experimentation, and machine learning to improve customer, marketplace, and business outcomes.

  • Mentor and coach a growing team of Data Scientists and contribute to career development and technical excellence across the group.

  • Lead the exploration of interconnected marketplace systems, recognizing feedback loops between customer behavior, fulfillment reliability, ETA accuracy, pricing, supply planning, product experience, and business performance.

  • Develop causal inference and experimentation frameworks that help Wonder understand which product, operational, and marketplace changes truly drive business impact.

  • Partner with engineering to drive architecture decisions for shared data layers, feature pipelines, modeling APIs, experimentation infrastructure, and production ML services.

  • Define and implement robust experimentation strategies for changes that move business metrics in high-noise environments.

  • Champion business-impact-driven data science, integrating causal inference, experimentation, risk-aware modeling, and scalable production ML systems that learn and adapt.

What You Bring to the Table

  • 8+ years of industry experience with MS or 6+ years with PhD in Statistics, Economics, Applied Mathematics, Computer Science, Data Science, Machine Learning, or a related quantitative field.

  • Proven experience applying data science and machine learning to complex business problems, such as marketplace optimization, customer experience, forecasting, personalization, pricing, supply/demand balancing, operational policy changes, or product experimentation.

  • Deep expertise in causal inference, experimentation, and statistical modeling, including methods such as A/B testing, difference-in-differences, regression discontinuity, instrumental variables, synthetic controls, uplift modeling, or causal impact analysis.

  • Strong intuition for business and product trade-offs - customer experience vs. efficiency, ETA confidence vs. conversion risk, fulfillment reliability vs. cost, marketplace growth vs. quality, and short-term optimization vs. long-term health.

  • Proficiency in Python, data analysis, visualization, and writing scalable, production-ready code using object-oriented design.

  • Demonstrated ability to take data science, ML, or causal inference systems into production, partnering with engineering on architecture, deployment, and monitoring best practices.

  • Fluency in SQL or similar tools for directly interrogating production-scale datasets.

  • Experience mentoring and providing technical direction to other scientists, analysts, or engineers.

Got These? Even Better
  • Experience leading end-to-end design of data science, machine learning, measurement, or experimentation frameworks within marketplace, consumer product, fulfillment, logistics, pricing, forecasting, or operations systems.

  • Experience designing causal measurement strategies for complex systems where product, marketplace, and operational decisions interact across multiple layers.

  • Background in causal inference, econometrics, Bayesian modeling, experimental design, or observational measurement in high-noise environments.

  • Experience with applied experimentation frameworks, including A/B testing, power analysis, heterogeneous treatment effects, guardrail metrics, interference effects, and long-term impact measurement.

  • Experience building or influencing production ML systems that combine predictive modeling, causal measurement, experimentation, and business rules

  • Influence across disciplines - able to align product, engineering, operations, business, and data science around a cohesive ML, experimentation, and measurement strategy.

  • Experience defining strategy and technical roadmaps for data science, machine learning, experimentation, or causal inference platforms.

Our hybrid model requires 3 days a week in the office. That said, many team members choose to come in more often to take advantage of in-person collaboration and connection. You're welcome-and encouraged-to be in the office up to 5 days a week if it works for you.

#LI-Hybrid

New York: $240,000 - $249,500 per year.

Illinois: $216,000 - $224,500 per year.

Wonder uses geographic-specific salary structures, which means the salary offered may vary depending on where the job is located. The final salary offer will take into account various factors, such as the candidate's skills, education, training, credentials, and experience.

Benefits

We offer a competitive salary package including equity and 401K. Additionally, we provide multiple medical, dental, and vision plans to meet all of our employees' needs as well as many benefits and perks that are not listed.

A Final Note

At Wonder, we build the best teams by hiring with an objective lens - evaluating people for their potential while championing diversity, equity, and inclusion. We do not discriminate based on race, color, religion, gender identity or expression, sexual orientation, national origin, age, military service eligibility, veteran status, marital status, disability, or any other protected class. As part of our commitment to fair and compliant hiring practices, Wonder participates in the federal government's E-Verify program to confirm employment eligibility. If you need an accommodation during the interview process, please let your recruiter know.

We look forward to hearing from you! We'll contact you via email or text to schedule interviews and share information about your candidacy.


What Grubhub employees say

Pay

Hours and flexibility

Workplace

Get the full story on Breakroom


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About Grubhub

Sourced by ZipRecruiter

Grubhub is a leader in the online food delivery industry, primarily functioning in the United States. Headquartered in Chicago, Illinois, it operates in approximately 4,000 U.S. cities. The company provides an online and mobile platform for restaurant pick-up and delivery orders. It was established in 2004 by Matt Maloney and Mike Evans, with the mission of connecting diners with local restaurants. Over the years, Grubhub has been instrumental in streamlining the food order and delivery process. This has enabled it to serve millions of users who can order from their favorite local restaurants through Grubhub's platform. Additionally, Grubhub has increased restaurant reach by providing them with dedicated delivery drivers.

Industry

Internet and it

Company size

1,001 - 5,000 Employees

Headquarters location

Chicago, IL, US

Year founded

2004