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Role Overview
We're building a multi-disciplinary engineering team that blends platform, application, and development expertise to deliver AI-driven analytics solutions. This role spearheads end-to-end execution—from requirement analysis to regional deployment. The position demands strong expertise in predictive modelling, time-series analytics, and scalable AI infrastructure, with a focus on driving operational efficiency and quality across global manufacturing operations
Key Responsibilities
Enablement Scope
Assessment: Implement structured evaluation frameworks to measure model performance, delivery success, and AI adoption
Strategic Impact
• Accelerate AI adoption across the Asia Pacific region through scalable infrastructure and structured delivery.
• Enable cross-functional innovation by aligning AI capabilities with manufacturing and business objectives.
• Drive measurable outcomes in quality, efficiency, and operational optimization through defined KPIs and success metrics.
Qualifications
Prior Automotive experience especially in EE Architecture, Hardware engineering and EE validation will be an added advantage
Preferred Traits
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Disclaimer - At Stellantis, we assess candidates based on qualifications, merit and business needs. We welcome applications from people of all gender identities, age, ethnicity, nationality,
religion, sexual orientation and disability. Diverse teams will allow us to
better meet the evolving needs of our customers and care for our future.
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Job ID: 148375495
Skills:
data wrangling , Ml, Data Design, Python, Predictive Analytics, Ai, Statistics, R, Dynamic Model Tuning, ML Ops
Skills:
Tensorflow, Nlp, Pytorch, Python, Machine Learning Algorithms, embeddings, Generative AI, Scikit-learn, vector databases, prompt engineering, Gemini models, Vertex AI, deep learning techniques, RAG pipelines
Skills:
BigQuery, Sql, DataFlow, Tableau, Machine Learning, Time Series Analysis, Clustering, Python, Vertex AI, Cloud Composer, Transformer-based models, Prompt Engineering, Looker, Vector databases, Fine-tuning methods, RAG, Classification, Embeddings, Regression
Skills:
Nlp, Machine Learning, Statistical Modelling, Sql, Python
Skills:
data wrangling , Ml, Data Design, Predictive Analytics, Python, ML Ops, R, Dynamic Model Tuning, Ai, Statistics
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