Senior Machine Learning Engineer
Quantiphi Mumbai, Maharashtra, India
IT Services and IT Consulting · 1,001-5,000 employees
About the role
You will design and implement production-grade AI/ML solutions, including generative AI applications and agentic workflows for enterprise clients. Additionally, you will own the complete ML lifecycle, from CI/CD pipelines and model deployment to system monitoring and performance optimization.
What they look for
Requirements
Candidates must have a bachelor's degree in a technical field and 3-6 years of hands-on experience in machine learning engineering. Proficiency in Python, cloud environments like GCP, and experience with MLOps practices are required.
Full description
While technology is the heart of our business, a global and diverse culture is the heart of our success. We love our people and we take pride in catering them to a culture built on transparency, diversity, integrity, learning and growth.
If working in an environment that encourages you to innovate and excel, not just in professional but personal life, interests you- you would enjoy your career with Quantiphi!
Senior Machine Learning Engineer Experience Level: 3-6 years Job Summary As a Senior Machine Learning Engineer at Quantiphi, you will build, deploy, and maintain production-grade AI/ML solutions for Fortune 500 enterprise clients on Google Cloud Platform. You'll engineer intelligent systems spanning generative AI, agentic workflows, traditional machine learning, and computer vision. This is a hands-on role for builders who thrive on shipping production systems that solve real business problems at enterprise scale.
Responsibilities Generative AI & Agentic Systems - - - - Design and implement generative AI applications including RAG systems, agentic workflows, and multi-agent orchestration for complex business problems.
Build agentic systems combining memory, planning, and dynamic reasoning for multi-step problem-solving across enterprise datasets Develop multi-agent architectures using modern orchestration frameworks with reliable communication and observability Implement prompt engineering, context optimization, and evaluation frameworks for GenAI applications
MLOps & Production Engineering - - - Own the complete ML lifecycle: CI/CD pipelines, automated testing, model versioning, validation gates, and progressive deployment Build production APIs and microservices with authentication, error handling, and monitoring; design data pipelines and integrations Monitor production ML systems, track model drift, maintain system reliability and implement A/B testing frameworks Knowledge Solutions Architect knowledge graph and semantic search solutions enabling entity resolution, relationship discovery, and intelligent retrieval Design hybrid retrieval combining vector embeddings with keyword search
Client Collaboration - - Present technical solutions to clients, translating engineering decisions into business outcomes Collaborate with architects, data engineers, and business analysts on integrated solutions
Required Qualifications - - - - - Bachelor's degree in Computer Science, Engineering, Mathematics, or related field (or equivalent demonstrated experience) 3-6 years of hands-on ML engineering with demonstrated expertise across multiple domains (GenAI) Expert-level Python proficiency with strong software engineering fundamentals: API design, testing, containerization Proven track record shipping production ML systems in cloud environments with GCP (Vertex AI, BigQuery, Cloud Run) or equivalent
Experience building GenAI, traditional ML, and computer vision applications; MLOps practices; retrieval-augmented generation
If you like wild growth and working with happy, enthusiastic over-achievers, you'll enjoy your career with us!
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