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Applied Scientist, AI Product Methods

Evolver

  • Palo Alto, California
  • 4 days ago

    Highlights

    Your work produces a clear methodology, a working prototype, credible evaluation evidence, and practical implementation guidance that can be integrated into the product, measured in production or realistic workflows, and improved over time. We combine deep domain expertise, advanced AI, and continuous applied learning to automate complex enterprise workflows while keeping people involved where judgment matters.

    Numbers & Facts

    LocationPalo Alto, California
    IndustryComputer/IT Services
    Company Size100 to 499 employees
    Year Founded2000
    Websitehttp://www.evolverinc.com/

    Description

    About Evolver 

    Evolver is an AI technology company transforming professional services. We combine deep domain expertise, advanced AI, and continuous applied learning to automate complex enterprise workflows while keeping people involved where judgment matters. 

    Our goal is to help organizations operate more efficiently, accurately, and intelligently. 

    About the Role 

    We are hiring Applied Scientists in Palo Alto to define how important AI capabilities should work inside our products – and to turn those definitions into something Engineering can ship. 

    Starting from a product need or system limitation, you will design a methodology, prototype it, evaluate its performance, and partner with Product and Engineering to incorporate the validated approach into the product. 

    Research is an input, not the final output. You will use relevant academic and industry findings where useful, then translate them into practical methods that can be implemented, evaluated, and improved in real enterprise workflows. Translation into product is the core of this role. 

    What You'll Do 

    • Define methodologies for capabilities such as reasoning, planning, retrieval, grounding, verification, and learning from feedback. 
    • Turn product needs and system limitations into clear methodological questions. 
    • Evaluate relevant research and industry techniques, identifying what should be adopted, adapted, or rejected. 
    • Design methodologies with explicit assumptions, workflows, decision rules, evaluation criteria, and known limitations. 
    • Build prototypes (Python, Cloud – Azure preferred) and reference implementations. 
    • Create evaluations that measure effectiveness, reliability, and failure modes. 
    • Compare alternative approaches and make evidence-based recommendations. 
    • Convert validated methodologies into specifications, reference code, evaluation assets, and acceptance criteria. 
    • Partner with Product, Engineering, and domain experts through integration, testing, and refinement. 

    Qualifications 

    • You have taken an AI idea from concept to something real: a prototype, internal tool, or product feature. 
    • You design methods with clear assumptions, failure modes, and evaluation criteria. 
    • Practical Python and Cloud infrastructure experience and the ability to build working prototypes others can run and extend. 
    • Experience designing or owning experiments, evaluations, or benchmarks that informed a ship/change/kill decision. 
    • The ability to understand research findings and determine how they should – or should not – be applied in a product. 
    • A solid understanding of machine learning and modern AI systems (for example language models, retrieval, agents, verification, or feedback loops). 
    • Clear technical writing: you can turn a validated approach into a specification, reference implementation, and acceptance criteria. 
    • Comfort working across Product, Engineering, and domain teams in a fast-moving environment. 
    • Experience with language models, retrieval systems and memory, agents, or production AI evaluation. 
    • A thesis-based master’s degree or PhD in computer science, artificial intelligence, machine learning, control theory, robotics, autonomous systems, or a related field. 
    • A peer-reviewed publication record (helpful signal). 

    What Success Looks Like 

    Your work produces a clear methodology, a working prototype, credible evaluation evidence, and practical implementation guidance that can be integrated into the product, measured in production or realistic workflows, and improved over time. 

    Benefits 

    • Competitive Compensation: Tailored to your experience and skill set. 
    • Flexible Work Arrangements: Hybrid working model for work-life balance. 
    • Career Growth: Opportunities for professional development and leadership roles. 
    • Innovative Culture: Work on transformative technologies and make an impact in the AI space. 

     

    About Company

    Evolver is a technology company serving the Federal, Commercial, and Legal markets that addresses client challenges in the present and transitions clients into the future by introducing efficient and effective IT solutions. Established in 2000, Evolver has successfully grown to be a trusted technology leader. Evolver’s efforts and growth have been recognized by leading publications and organizations, including Inc. 5000 for five consecutive years, and most recently “Future 50” from SmartCEO. With a dedicated focus on client satisfaction, Evolver has proven its value time and time again, from managing day-to-day operations to skillfully navigating the implementation and support of new technologies. Evolver’s core competencies are infrastructure, application development, cybersecurity, cloud, end-user support, data analytics and legal services.

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