Gartner

Sr Data Scientist

Gartner$113K — $147K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 6-8 years of hands-on experience in advanced machine learning engineering and enterprise product development
  • At least 2 years experience deploying LLMs in production and over 1 year designing multi-agent systems
  • Bachelor's degree required; Master's or PhD preferred, with quantitative or relevant experience in AI fields encouraged
  • Strong skills in Python, deep learning frameworks (e.g. PyTorch, TensorFlow) and LLM frameworks
  • Proficient in AI and data science areas such as NLP, conversational AI, and LLM fine-tuning

Responsibilities

  • Lead data science projects in collaboration with IT and business leaders
  • Architect and build sophisticated agent systems and workflows
  • Design AI tools to enhance content planning and production
  • Implement Model Context Protocol servers for integration with systems
  • Create user profiling models for chatbot personalization
  • Ensure high-quality AI and data science solutions
  • Mentor junior data scientists on best practices

Benefits

  • Competitive salary and paid time off policy
  • Charity match program and Group Medical Insurance
  • Parental Leave and Employee Assistance Program
  • Collaborative, diverse team culture
  • Professional development and unlimited growth opportunities
Full Job Description
About the role:

Join our dynamic BTI Data Science team and help transform Gartner's research content & insights operation. In partnership with our PMO and IT organizations, you will help build the AI applications and systems that empower our Expert Analysts to perform their work with unprecedented efficiency and depth.

As a Senior Data Scientist, you will lead complex AI and data science projects in partnership with cross-functional teams and their leaders, steering the development of advanced agent systems and agentic workflows to create intelligent, scalable solutions that deliver tangible value and enhance every step of the Analyst's journey. You'll architect and implement cutting-edge agentic AI solutions while ensuring seamless integration with enterprise platforms.

What you will do
  • Lead data science projects in close collaboration with IT, Data Engineering, Application development, PMO and business leaders to deliver high-value business capabilities
  • Architect and build sophisticated agent systems and agentic workflows that provide intelligent, personalized Analyst experiences at scale
  • Design and implement advanced AI tools that facilitate human-in-the-loop content planning, content production, and insights creation, prioritizing our Analysts' expertise
  • Design and implement Model Context Protocol (MCP) servers to enable seamless integration between AI agents, enterprise systems, and external tools
  • Build user profiling and personalization models to deliver tailored chatbot experiences
  • Be accountable for high-quality AI and data science solutions with respect to accuracy, coverage, scalability, stability, and business adoption
  • Take ownership of algorithms and drive enhancements/optimizations based on business requirements with proper documentation and code-reusability
  • Leverage internal and external data to understand Analysts' priorities and deliver targeted support
  • Collaborate with leadership on long-term vision, strategy, and solution roadmaps aligned with business objectives
  • Pitch ideas, present solutions, and influence senior leaders and stakeholders with strong business value propositions
  • Stay on top of fast-moving AI/ML models and technologies, particularly related to LLMs, multi-agent systems, agentic workflows, agentic RAG, deep agents, emerging AI architectures, and emerging generative UI/UX solutions
  • Collaborate with engineering and product teams to launch MVPs, iterate quickly, and drive solutions toward production
  • Independently plan and drive complex data science projects that deliver measurable business value (and measure that value/ROI)
  • Mentor junior data scientists in AI Engineering, LLM app development, and best practices


What you will need
  • 6-8 years of hands-on experience in advanced ML engineering and enterprise tool/product development, including at least 2 years deploying and managing LLMs in production, and over 1 year designing and implementing agents and multi-agent systems for enterprise business applications.
  • Bachelor's degree required; Master's or PhD preferred. While degrees in mathematics, computer science, engineering, or other quantitative fields are advantageous, candidates with a strong academic background in the humanities or other fields who also have relevant experience in quantitative methods, natural language processing (NLP), or artificial intelligence (AI) are encouraged to apply.
  • Strong communication skills in technical and business domains with demonstrated ability to translate ML/AI technology solutions into actionable business strategies and influence executive leadership
  • Experience and proficiency with Python, deep learning frameworks (e.g., PyTorch, TensorFlow, Hugging Face), LLM & Agentic frameworks (e.g., LangChain, LangGraph, LlamaIndex), SQL/relational databases (e.g., Oracle), NoSQL databases (e.g., MongoDB, graph database), vector databases (e.g., Pinecone, Weaviate), distributed machine learning (Spark), AI evals and observability solutions
  • Working experience in some of the following AI and data science areas:
    • Large Language Models (LLMs) and Agentic AI
    • Prompt Engineering, Context Engineering, Harness Engineering
    • Conversational AI, chatbot development, and dialogue systems
    • Natural Language Processing and text mining
    • Search and Recommendation systems
    • LLM fine-tuning, and model optimization
    • AI agent architectures, orchestration, and observability
  • Strong familiarity with Model Context Protocol (MCP) and building tools for AI agents
  • Strong understanding of Lean product principles, software development lifecycle, and ML/AI life cycle
  • Proven ability to translate business objectives into actionable AI and data science tasks and implement state-of-the-art ML/AI research into production systems
  • Experience with cloud computing services such as AWS or Azure ML
  • Strong ability to work collaboratively across product, data science and technical stakeholders with experience mentoring data scientists
  • Ability to work in a culture that thrives on feedback and seeks opportunities to stretch outside comfort zone
  • Bias for action and user and customer-outcome oriented


What you will get
  • Competitive salary, generous paid time off policy, charity match program, Group Medical Insurance, Parental Leave, Employee Assistance Program (EAP) and more!
  • Collaborative, team-oriented culture that embraces diversity
  • Professional development and unlimited growth opportunities


#LI-NG2

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About Gartner

Gartner, Inc. is a research and advisory company that provides information, advice, and tools for leaders in IT, finance, HR, customer service and support, legal and compliance, marketing, sales, and supply chain functions. The company operates in more than 100 countries and has over 16,000 employees. Gartner was founded in 1979 and is headquartered in Stamford, Connecticut.
Learn more about Gartner
Size
16,600 employees
Market Cap
$26.4 billion
Industry
Net Income
$266.7 million
Founded
1979
5 Year Trend
+14.1%
Revenue
$4 billion
NASDAQ

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