- Architect, design, and implement scalable machine learning systems for optimized content delivery, connectivity, and personalization.
- Lead decision-making for ML infrastructure, cloud-based data pipelines, and deployment strategies.
- Define best practices for ML system design, versioning, and continuous integration.
ML Model Development
- Build, train, and deploy predictive and generative models using frameworks such as TensorFlow, PyTorch, and Scikit-learn.
- Optimize model performance for scalability, latency, and resource efficiency.
- Collaborate with data scientists and engineers to integrate models into production environments.
Innovation & Research
- Explore emerging ML technologies and frameworks to enhance system performance.
- Evaluate current algorithms, architectures, and deployment techniques for business impact.
Cross-functional Collaboration
- Work closely with product, data, and engineering teams to align ML initiatives with organizational goals.
- Provide technical mentorship and guidance to junior ML engineers.
Monitoring & Optimization
- Establish robust monitoring, validation, and retraining workflows for deployed models.
- Ensure model explainability, reproducibility, and compliance with data governance standards.
📌 Machine Learning Engineer I/II (Pune)
🏢 Panasonic
📍 Pune
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