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VeeamPosted 2 months ago

Data Scientist

On-siteSeattle, Washington, United States

Full TimeSenior LevelDoctorate Or Professional DegreeLargeData Protection

Job Summary

Design and deploy scalable machine learning and AI solutions that drive business value across the Revenue Intelligence team. Build production-ready ML pipelines from feature engineering through deployment and monitoring, integrating Large Language Models and Retrieval-Augmented Generation systems into enterprise workflows. Partner with stakeholders to translate complex challenges into actionable insights while collaborating with cross-functional teams on automation and process improvement. This hands-on role leverages modern frameworks like Streamlit and PySpark to create innovative, production-ready applications that shape the future of revenue intelligence.

Required Qualifications

  • 4+ years of professional experience in Data Science, Machine Learning, AI Engineering, or a related field
  • Strong programming skills in Python and SQL
  • Experience designing and deploying scalable machine learning solutions, including feature engineering, model evaluation, deployment, and MLOps practices
  • Hands-on experience with Large Language Models (LLMs), prompt engineering, Retrieval-Augmented Generation (RAG), Model Context Protocol (MCP), or similar AI frameworks
  • Solid understanding of data engineering concepts, including ETL/ELT pipelines, data modeling, governance, and storage optimization
  • Experience with Databricks, PySpark, or distributed data processing platforms
  • Familiarity with software engineering best practices, including APIs, version control, testing, CI/CD, and deployment workflows
  • Experience with business intelligence and visualization tools such as Tableau, Power BI, or Qlik
  • Excellent analytical thinking, problem-solving, communication, and technical writing skills
  • Experience using Agile project management tools such as Jira, Confluence, or Trello

Desired Qualifications

  • Experience developing AI copilots, autonomous agents, or conversational AI applications
  • Exposure to cloud-native AI and machine learning platforms
  • Familiarity with vector databases, embeddings, and semantic search technologies
  • Experience working in Revenue Operations, Sales Analytics, or Business Intelligence environments
  • Knowledge of future AI, OpenAI, or similar generative AI ecosystems

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