Job Description
Role: LeadMachine Learning Engineer
Experience: 5+ Years
Location: Chennai
Work Mode: Hybrid
Job Summary:
We are seeking a Machine Learning Engineer to design, develop, and deploy advanced AI/ML solutions, including agentic AI systems and traditional machine learning models, for the mortgage servicing and originations domain. This role involves building scalable, production-ready ML models on Google Cloud Platform, applying classification techniques, model optimization, and tuning, and driving AI-powered automation and decision-making across business processes.
Roles & Responsibilities
Lead the design, development, training, and deployment of AI/ML models, including traditional ML and agentic AI systems.Develop classification, regression, and predictive models using structured and unstructured data.Perform model tuning, hyperparameter optimization, feature engineering, and model evaluation to improve accuracy and performance.Build and manage scalable data pipelines and ML workflows on Google Cloud Platform.Implement, monitor, and optimize AI/ML models for performance, latency, scalability, and reliability.Collaborate with cross-functional teams to integrate AI/ML solutions into business applications.Analyze large datasets to derive actionable insights and support data-driven decision-making.Develop and maintain automated testing, validation, and monitoring frameworks for ML models.Ensure model reproducibility, versioning, and lifecycle management in production environments.Contribute to MLOps practices, including CI/CD pipelines for ML model deployment.Document model architectures, workflows, and ensure adherence to data governance and security standards.Stay updated with advancements in machine learning, generative AI, and LLM technologies, applying best practices to enhance solutions.Troubleshoot and resolve issues related to model performance, deployment, and data integration.Required Skills
Python for ML model developmentTraditional Machine Learning Concepts (classification, regression, clustering)Model development, tuning, and optimizationGenerative AI, LLMs, RAG, Prompt EngineeringMLOps (model deployment, monitoring, CI/CD)Data preprocessing, feature engineering, and model evaluationQualifications & Experience
5-8 years of experience in AI/ML model development, including traditional ML and advanced AI systemsStrong hands-on experience in building and deploying ML models in productionExperience in architecting scalable ML solutionsKnowledge of advanced MLOps, automation, and monitoring frameworksUnderstanding of data governance, security, and complianceAbility to mentor junior engineers and provide technical leadership
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