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AI Summary

Design, build, and deploy scalable machine learning models and data workflows using Databricks and Lakehouse architecture. Collaborate with cross-functional teams to implement AI/LLM solutions and ensure robust data governance and security.

Job Description:

Role Overview

We are seeking a highly skilled Data Scientist with deep expertise in Databricks, Machine Learning, and AI-driven analytics to join our growing data organization. In this role, you will design, build, and deploy scalable models and data workflows that power enterprise insights, automation, and decision-making. You will work across engineering, analytics, and business teams to transform raw data into intelligent, production-ready solutions.

Key Responsibilities

  • Develop, train, and deploy machine learning models using Databricks notebooks, MLflow, and the Lakehouse architecture.
  • Build scalable ETL/ELT pipelines leveraging Delta Lake, PySpark, and Databricks workflows.
  • Implement AI/LLM-based solutions, including retrieval-augmented generation (RAG), vector search, and enterprise agent workflows.
  • Partner with data engineering to optimize datasets for analytics, modeling, and real-time inference.
  • Conduct exploratory data analysis (EDA), feature engineering, and statistical modeling to uncover actionable insights.
  • Use MLflow for experiment tracking, model versioning, and lifecycle management.
  • Collaborate with business stakeholders to translate ambiguous problems into measurable, data-driven solutions.
  • Deploy models into production using Databricks Model Serving, serverless compute, or API endpoints.
  • Ensure governance, security, and compliance using Unity Catalog and enterprise data standards.
  • Continuously evaluate new AI/ML technologies and recommend improvements to the platform and modeling strategy.
  • Implement and uphold enterprise data governance standards, ensuring models and pipelines comply with regulatory, privacy, and audit requirements.
  • Use Unity Catalog to manage secure, centralized governance for data, ML models, notebooks, and AI assets.
  • Design and enforce Role-Based Access Control (RBAC) to ensure users only access data and models appropriate for their job functions.
  • Apply Attribute-Based Access Control (ABAC) for fine-grained, dynamic access decisions based on user attributes (e.g., department, region, clearance level) and data attributes (e.g., sensitivity, classification).

Required Qualifications

  • Bachelor’s or Master’s degree in Data Science, Computer Science, Statistics, or related field.
  • 3–7+ years of experience building machine learning models in Python (Pandas, Scikit-learn, PySpark, TensorFlow, or PyTorch).
  • Hands-on experience with Databricks, including notebooks, Delta Lake, MLflow, and Databricks SQL.
  • Strong understanding of Lakehouse architecture, distributed computing, and scalable data processing.
  • Experience deploying ML models into production environments.
  • Proficiency in SQL and Python for data manipulation and analysis.
  • Familiarity with LLMs, embeddings, vector databases, or AI agent frameworks.
  • Ability to communicate complex technical concepts to non-technical stakeholders.

Preferred Qualifications

  • Experience with Databricks Model Serving, Vector Search, or serverless warehouses.
  • Background in NLP, deep learning, or generative AI.
  • Experience integrating Databricks with SAP, Snowflake, or enterprise BI tools.
  • Knowledge of MLOps best practices and CI/CD pipelines.
  • Experience with cloud platforms (Azure, AWS, or GCP).
  • Experience with SAP BDC, BDC Connect

What You’ll Bring

  • A passion for solving complex problems with data and AI.
  • Curiosity, creativity, and a strong desire to innovate.
  • Ability to work in fast-paced, cross-functional environments.
  • A mindset for building scalable, secure, and production-grade solutions.

Position Type:

Regular

Additional Locations: 

Additional Information:

Remote Status:

Remote

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