Lead Engineer - Device Level Analytics

General Motors — Bengaluru, Karnataka, India

Job Description Sponsorship: GM DOES NOT PROVIDE IMMIGRATION-RELATED SPONSORSHIP FOR THIS ROLE. DO NOT APPLY FOR THIS ROLE IF YOU WILL NEED GM IMMIGRATION SPONSORSHIP (e.g., H-1B, TN, STEM OPT, etc.) NOW OR IN THE FUTURE. Work Arrangement: This role is categorized as hybrid. This means the successful candidate is expected to report to the office four times per week or other frequency dictated by the business. What You'll Do Collaborate with plant teams, SMEs, IT departments, and the analytics community to capture, prioritize, and document data analytics requirements, driving measurable results. Extract data using existing IoT solutions and big data sources, conduct thorough analysis, perform testing, and validate outcomes. Analyze datasets to identify trends and patterns, interpret and communicate insights to various teams and leaders to enhance and streamline processes. Apply manufacturing domain knowledge and IoT knowledge to develop proof of concepts to address complex manufacturing challenges. Propose solutions and strategies to business challenges that drive significant impact. Monitor the health of data collection pipelines, report issues, and follow up with responsible teams. Write user stories and frameworks for the IT development team to productize the self developed solutions. Present complex information through data visualization techniques. Provide training and guidance to business partners on data analysis methodologies, reporting, and tools. Your Skills & Abilities (Required Qualifications) Masters / Degree in Automotive technology, Mathematics, Statistics, Computer Science, or information technology. 10+ years of experience in any Automotive company or Data Analytics environment. Proficient in Python (preferred) or any object-oriented programming languages. Expert in data analysis, including identifying patterns, extracting valuable insights, and providing data-driven recommendations to support decision-making. Proficient in applying statistical t

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