Lead Data Scientist

Ford Motor Company·Oracle Recruiting
Chennai, IndiaFull-timePosted Jul 1, 2026
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The Global Data Insights and Analytics (GDIA) department at Ford Motor Company develops scalable solutions to complex real-world problems using Machine Learning, Big Data, Statistics, Econometrics, and Optimization to drive evidence-based decision-making.

We are seeking a hands-on Lead Data Scientist to drive the technical development and successful delivery of AI/ML projects. In this role, you will act as a senior individual contributor and technical project driver, working directly with business partners to translate complex business challenges into robust machine learning solutions. You will be responsible for the end-to-end lifecycle of these products—from initial framing and hands-on model development to deployment and business integration.

Key Roles and Responsibilities of Position:

  • Lead the technical delivery of AI/ML projects, ensuring that products are developed, validated, and successfully integrated to solve critical business problems.
  • Partner closely with business stakeholders to understand requirements, translate business problems into analytically tractable frameworks, and deliver actionable, data-driven insights.
  • Design and implement data analysis and ML models, hypotheses, algorithms and experiments to support data-driven decision-making.
  • Mentor junior data scientists and guide them in solving analytics related problems
  • Apply various analytics techniques like data mining, predictive modeling, prescriptive modeling, math, statistics, advanced analytics, machine learning models and algorithms, etc.; to analyze data and uncover meaningful patterns, relationships, and trends
  • Design efficient data loading, data augmentation and data analysis techniques to enhance the accuracy and robustness of data science and machine learning models, including scalable models suitable for automation
  • Research, study and stay updated in the domain of data science, machine learning, analytics tools and techniques etc.; and continuously identify avenues for enhancing analysis efficiency, accuracy and robustness

Key Roles and Responsibilities of Position:

  • Lead the technical delivery of AI/ML projects, ensuring that products are developed, validated, and successfully integrated to solve critical business problems.
  • Partner closely with business stakeholders to understand requirements, translate business problems into analytically tractable frameworks, and deliver actionable, data-driven insights.
  • Design and implement data analysis and ML models, hypotheses, algorithms and experiments to support data-driven decision-making.
  • Mentor junior data scientists and guide them in solving analytics related problems
  • Apply various analytics techniques like data mining, predictive modeling, prescriptive modeling, math, statistics, advanced analytics, machine learning models and algorithms, etc.; to analyze data and uncover meaningful patterns, relationships, and trends
  • Design efficient data loading, data augmentation and data analysis techniques to enhance the accuracy and robustness of data science and machine learning models, including scalable models suitable for automation
  • Research, study and stay updated in the domain of data science, machine learning, analytics tools and techniques etc.; and continuously identify avenues for enhancing analysis efficiency, accuracy and robustness

Minimum Qualifications

 

Preferred Qualifications

  •  An MS/PhD in Computer Science, Operational research, Statistics, Applied mathematics, or in any other engineering discipline. PhD strongly preferred.

  • Experience working with Google Cloud Platform (GCP) services, leveraging its capabilities for ML model development and deployment.
  • Experience with Git and GitHub for version control and collaboration.
  • Besides Python, familiarity with one more additional programming language (e.g., C/C++/Java) 
  • Strong background and understanding of mathematical concepts relating to probabilistic models, conditional probability, numerical methods, linear algebra, neural network under the hood detail.
  • Experience working with large language models such GPT-4, Google, Palm, Llama-2, etc.
  • Excellent problem solving, communication, and data presentation skills.

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