Senior Data Scientist

Posted 2 Days Ago
Be an Early Applicant
6 Locations
In-Office
104K-173K Annually
Senior level
Automotive • Insurance
The Role
Designs, develops, validates, implements, and monitors statistical and machine-learning solutions for insurance pricing, product development, and profitable growth. Owns analytical workstreams from problem definition through delivery, builds scalable workflows using Python and cloud technologies, collaborates with data and business teams, participates in model and code reviews, communicates recommendations to stakeholders, and provides technical guidance to less experienced data scientists.
Summary Generated by Built In

Location(s)

Alpharetta, Georgia, Bloomington, Illinois, Chicago, Illinois, Dallas, Texas, Jacksonville, Florida, San Antonio, Texas

Details

Kemper is one of the nation’s leading specialized insurers. Our success is a direct reflection of the talented and diverse people who make a positive difference in the lives of our customers every day. We believe a high-performing culture, valuable opportunities for personal development and professional challenge, and a healthy work-life balance can be highly motivating and productive. Kemper’s products and services are making a real difference to our customers, who have unique and evolving needs. By joining our team, you are helping to provide an experience to our stakeholders that delivers on our promises. 

Position Summary: 

Data Science is a driver of significant competitive advantage for Kemper and is critical to the organization’s success. As a member of the Kemper Auto Data Science team, this position is responsible for independently designing, developing, implementing, and monitoring predictive modeling and analytical solutions that support pricing segmentation, product development, and profitable growth.

Position Responsibilities:

  • Independently designs, develops, validates, and implements statistical and machine-learning solutions for complex business problems.
  • Owns significant analytical and modeling workstreams from problem definition through delivery and performance monitoring.
  • Collaborates with data scientists, data engineers, and business partners to develop scalable analytical solutions.
  • Develops reusable, well-documented analytical workflows using modern data science and cloud technologies.
  • Manages priorities, deliverables, and timelines for assigned projects and communicates progress, risks, results, and recommendations to stakeholders.
  • Participates in model and code reviews and recommends methodological or implementation enhancements.
  • Provides technical guidance to less experienced team members and contributes to data science best practices.

Position Qualifications:

Minimum Job Requirements

  • Bachelor’s degree in Mathematics, Statistics, Engineering, or another STEM field with at least 8 years of relevant experience, or a graduate degree in a STEM field with at least 6 years of relevant experience in the insurance industry, data science/analytics, or a related environment. PhD in a STEM field preferred, with at least 4 years of relevant industry experience  
  • At least 4 years of firsthand experience with statistical modeling and AI/ML platforms
  • Demonstrated experience independently developing and delivering statistical or machine-learning solutions

Required Job Skills

  • Strong proficiency in Python, including experience with common data science libraries such as pandas, NumPy, scikit-learn, SciPy, and visualization libraries.
  • Strong proficiency in SQL for data extraction, transformation, validation, and analysis of large and complex datasets.
  • Strong understanding of statistical modeling and machine learning concepts, including model design, feature development, training, validation, performance evaluation, interpretation, and monitoring.
  • Hands-on experience with a range of statistical and machine learning techniques, such as generalized linear models, regularized regression, tree-based models, ensemble methods, clustering, or neural networks.
  • Ability to develop readable, maintainable, modular, and well-documented Python code and reusable analytical workflows.
  • Experience working with large and complex structured datasets from relational databases, delimited files, data frames, and other common data formats.
  • Strong problem-solving skills with the ability to independently develop analytical approaches for complex or ambiguous business problems.
  • Excellent communication skills, particularly the ability to translate technical methodologies, results, and recommendations for both technical and business audiences.
  • Ability to independently manage significant analytical workstreams while collaborating effectively with data scientists, data engineers, and business partners.
  • Experience participating in model reviews, code reviews, and technical discussions and providing constructive recommendations for improvement.

Preferred Qualifications

  • Prior experience in insurance, financial services, pricing, risk modeling, or a related analytical business environment.
  • Experience applying predictive modeling techniques to pricing, risk, product, or other complex business applications.
  • Experience with Git, GitLab, or other version control and collaborative development tools.
  • Hands-on experience with cloud platforms such as AWS, Azure, Databricks, or similar environments for data science and machine learning workflows.
  • Familiarity with MLOps practices such as model packaging, CI/CD workflows, reproducible pipelines, model deployment, and performance monitoring.
  • Experience developing reusable or modular analytical frameworks that support scalable model development and implementation.
  • Experience providing technical guidance or mentoring to less experienced data scientists.

Additional Information

  • This position can be worked in a hybrid arrangement from a local Kemper office. Remote options are available for non-local candidates.
  • The range for this position is $104,300 to $173,300.  When determining candidate offers, we consider experience, skills, education, certifications, and geographic location among other factors.  This job is eligible for an annual discretionary bonus and Kemper benefits (Medical, Dental, Vision, PTO, 401k, etc.)
  • Sponsorship is not accepted for this opportunity.

#LI-JO1

Skills Required

  • Bachelor's degree in Mathematics, Statistics, Engineering, or another STEM field with at least 8 years of relevant experience
  • Graduate degree in a STEM field with at least 6 years of relevant experience in insurance, data science, analytics, or a related environment
  • PhD in a STEM field with at least 4 years of relevant industry experience
  • At least 4 years of firsthand experience with statistical modeling and AI/ML platforms
  • Experience independently developing and delivering statistical or machine-learning solutions
  • Strong proficiency in Python and common data science libraries
  • Strong proficiency in SQL for large and complex datasets
  • Strong understanding of statistical modeling and machine learning concepts
  • Experience with statistical and machine-learning techniques including generalized linear models, regularized regression, tree-based models, ensemble methods, clustering, or neural networks
  • Ability to develop readable, maintainable, modular, and documented Python code and reusable analytical workflows
  • Experience working with large and complex structured datasets
  • Strong problem-solving and analytical skills
  • Excellent communication skills for technical and business audiences
  • Ability to independently manage analytical workstreams and collaborate with technical and business partners
  • Experience participating in model reviews, code reviews, and technical discussions
  • Experience in insurance, financial services, pricing, risk modeling, or a related analytical business environment
  • Experience applying predictive modeling to pricing, risk, product, or other complex business applications
  • Experience with Git, GitLab, or other version control tools
  • Experience with AWS, Azure, Databricks, or similar cloud environments
  • Familiarity with MLOps practices, model packaging, CI/CD, reproducible pipelines, deployment, and monitoring
  • Experience developing reusable or modular analytical frameworks
  • Experience providing technical guidance or mentoring to less experienced data scientists

Kemper Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Kemper and has not been reviewed or approved by Kemper.

  • Retirement Support A 401(k) with company match and immediate vesting is paired with an Employee Stock Purchase Program, and an HSA employer contribution is noted for the HDHP option. These features strengthen long-term savings and financial security beyond base pay.
  • Healthcare Strength Comprehensive coverage includes medical, dental, vision, prescription, life and disability insurance, an EAP, and wellness programs. While plan costs vary by option and location, the breadth of core coverage is a clear pillar of the package.
  • Leave & Time Off Breadth PTO, paid holidays, sick time, and paid volunteer time are available alongside paid parental leave and other leave programs. This scope supports time away for rest, family needs, and community engagement.

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The Company
HQ: Chicago, IL
6,436 Employees
Year Founded: 1990

What We Do

The Kemper family of companies is one of the nation’s leading specialized insurers. With approximately $15 billion in assets, Kemper is improving the world of insurance by providing affordable and easy-to-use personalized solutions to individuals, families and businesses through its Auto, Personal Insurance, Life and Health brands. Kemper serves over 6.6 million policies, is represented by approximately 34,000 agents and brokers, and has approximately 10,000 associates dedicated to meeting the ever-changing needs of its customers.

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