SAS

Sr Associate Data Scientist

SAS$100K — $130K *
Cary, NC 27513In-Person
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Master's degree in Data Science, Computer Science, Engineering, Statistics, Mathematics, or a related quantitative field.
  • Experience applying computer vision and machine learning methods to real-world tasks such as image analysis and model training.
  • Hands-on experience with modern deep learning or computer vision frameworks, particularly Python-based ones.
  • Experience with real-world datasets, focusing on data preparation and model performance evaluation.
  • Ability to analyze results and communicate technical findings effectively to diverse audiences.

Responsibilities

  • Design, develop, and evaluate machine learning and computer vision models for solving complex problems.
  • Apply deep learning techniques like convolutional models and transformers to enhance model performance.
  • Analyze model performance metrics, identify issues, and iterate on solutions based on findings.
  • Collaborate with data scientists and engineers to integrate models into analytical workflows.
  • Contribute to clear, reproducible modeling pipelines and communicate results effectively.
  • Adhere to security policies and best practices in software development.
  • Promote a culture of curiosity, passion, and accountability in team dynamics.

Benefits

  • Comprehensive medical, dental, vision, and prescription plans.
  • Free onsite health care center for employees and enrolled family members.
  • Industry-leading 401k plan with contributions.
  • Tuition Assistance Program with resources for development.
  • Generous time off with vacation days, holidays, and a U.S. Winter Wellness Break.
  • Volunteer Time Off, parental leave, and unlimited paid sick days.
  • Generous childcare benefits for full-time employees.
Full Job Description
Sr. Associate Data Scientist- Hybrid, Cary, North Carolina

About the job

The Applied AI & Modeling (AAIM) team is looking for a Data Scientist to help advance a multi-phase applied research and development effort focused on computer vision and machine learning for high-impact real-world data. Our team works at the intersection of advanced modeling, scalable AI systems, and domain-driven problem solving, partnering closely with engineers and subject-matter experts to turn emerging research into practical, measurable outcomes.

This is an exciting opportunity to build and evaluate state-of-the-art vision models while working on problems that demand both technical depth and rigor. You will contribute to the evolution of existing prototypes into more robust, scalable solutions, gaining hands-on experience with 3D vision, attention mechanisms, and modern deep learning architectures in a collaborative environment. This role is well-suited for someone who wants to grow as an applied data scientist, learn how advanced AI systems are developed responsibly, and see their work directly influence the next stage of real-world AI innovation.

As a Sr. Associate Data Scientist, you will:
  • Design, develop, and evaluate machine learning and computer vision models to solve complex, real-world problems using large and diverse datasets.
  • Apply and extend modern deep learning techniques (e.g., convolutional models, 3D vision, attention mechanisms, transformer-based approaches) to improve model accuracy, robustness, and scalability.
  • Analyze model performance using appropriate quantitative metrics, identify failure modes, and iterate on solutions based on experimental findings.
  • Collaborate with fellow data scientists, software engineers, and cross-functional partners to integrate models into end-to-end analytical workflows.
  • Contribute to well-documented, reproducible modeling pipelines and clearly communicate insights, tradeoffs, and results to technical and non-technical audiences.
  • Ensure all applicable security policies and development processes are followed to support the organization's secure and responsible software development goals.
  • Embrace curiosity, passion, authenticity, and accountability - our values that guide how we work, learn, and innovate together.

Required qualifications

  • Master's degree in Data Science, Computer Science, Engineering, Statistics, Mathematics, or a related quantitative field
  • Demonstrated experience applying computer vision and machine learning techniques to real-world problems, including tasks such as image analysis, feature extraction, model training, and performance evaluation.
  • Hands-on experience with at least one modern deep learning or computer vision framework (e.g., Python-based frameworks commonly used for CNN- or vision-based modeling).
  • Experience working with real-world datasets, including data preparation, model evaluation using quantitative metrics, and result interpretation.
  • Ability to analyze results, troubleshoot models, and clearly communicate technical findings to both technical and non-technical audiences.
  • An equivalent combination of related education, training, and experience may be considered in place of the above qualifications.


Additional competencies, knowledge and skills

Key competencies
  • Analytical Thinking - Ability to break down complex, ambiguous problems into structured analytical tasks, evaluate alternative approaches, and use data to support sound technical decisions.
  • Collaboration - Ability to work effectively with cross-functional partners, including data scientists, engineers, and domain experts, contributing constructively in a team-based environment.
  • Learning Agility - Willingness and ability to quickly learn new methods, tools, and domains, and apply new knowledge to evolving technical challenges.


Additional skills and experience (nice to have)
  • Experience with computer vision techniques for image segmentation, detection, or classification.
  • Exposure to 3D modeling, such as 3D convolutional networks or multi-dimensional image analysis.
  • Familiarity with attention mechanisms or transformer-based vision models.
  • Experience working in collaborative research and innovative environments.


World-class benefits

Highlights include...
  • Comprehensive medical, prescription, dental and vision plans.
  • Medical plan options include:
    • PPO with low annual deductible and copays.
    • HDHP combined with a health savings account with a contribution from SAS (no access to on-site health care center).
  • Onsite Health Care Center (HQ) that's free to employees and family members enrolled in the PPO plan. There's a pharmacy too! Not local to HQ? The pharmacy will ship prescriptions for no additional charge!
  • An industry-leading 401k plan.
  • Tuition Assistance Program and programs and resources to support your development
  • Generous time away including vacation time, a variety of paid holidays, and our much-loved U.S. Winter Wellness Break between December 25 and January 1.
  • Volunteer Time Off, parental leave and unlimited paid sick days.
  • Generous childcare benefits for all full-time employees.

About SAS

SAS is a multinational software company that provides advanced analytics, business intelligence, and data management software and services. SAS is the largest privately held software company in the world and is headquartered in Cary, North Carolina. The company was founded in 1976 by Jim Goodnight and John Sall, who are still the CEO and Executive Vice President, respectively. SAS has over 83,000 customers worldwide and employs over 14,000 people in more than 60 countries. SAS has been recognized as one of the best places to work by Fortune magazine and the Great Place to Work Institute.
Learn more about SAS
Size
14,000 employees
Industry
Founded
1976

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