Architect - Machine Learning (Azure)
Quantiphi- Location
- IN KA Bengaluru · IN KL Trivandrum · IN MH Mumbai Eureka
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Posted 3mo ago
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!
Role : Associate Architect - Machine Learning (Azure)
Experience : 8- 14 Years
Location: Bangalore
Job Summary
We are seeking an innovative and experienced Machine Learning Engineer at Architect level with a strong foundation in both traditional data science and modern Generative AI. The ideal candidate will lead the design, development, and deployment of high-impact, data-driven solutions on our Azure cloud infrastructure. You will be responsible for architecting complex systems, including multi-agent platforms and computer vision solutions, optimizing legacy models, and providing technical leadership to cross-functional teams to solve challenging business problems.
Must-Have Skills & Experience
- Proven experience architecting, developing, and deploying traditional and deep learning solutions at scale, from concept to production
- Lead end-to-end ML lifecycle including data preparation, feature engineering, model development, validation, deployment, and monitoring
- Provide technical leadership, mentorship, and architecture-level guidance to project teams
- Demonstrated expertise in designing and implementing complex multi-agent systems
- Experience with agentic design patterns such as supervisor-worker and orchestrator-led group chats to automate intricate business processes (e.g., invoice processing, document automation)
- Experience with data augmentation techniques and human-in-the-loop annotation processes for large-scale model training
- Evaluate and optimize existing models using traditional ML techniques. Proven expertise in traditional ML algorithms (regression, decision trees, SVM, ensemble models, clustering, Random Forest, XGBoost)
- Deep understanding of ML pipeline orchestration and model lifecycle management with production-grade implementation experience
- Ensure adherence to MLOps best practices and drive implementation on Azure cloud
- Extensive experience in Azure cloud services including Azure Machine Learning, Azure Data Factory, Blob Storage, Azure DevOps, and Azure Container Apps
- Leveraged Azure Cognitive Search and Azure OpenAI Service to build scalable and efficient knowledge retrieval systems, enabling real-time semantic search and contextual answer generation
- Designed and implemented RAG pipelines on Microsoft Azure, integrating large language models (LLMs) with domain-specific knowledge bases to enhance AI-driven information retrieval and response accuracy
- Experience with evaluation, monitoring and observability frameworks for Agentic workflows.
- Experience designing fault-tolerant systems with robust error handling, fallback mechanisms, and state management for complex, multi-step AI workflows
- Ability to design and review ML architecture and system integration strategies with hands-on experience in production deployments
- Certifications in Azure AI Engineer or Azure Solutions Architect
- Excellent problem-solving, communication, and stakeholder management skills with experience presenting technical solutions to business stakeholders
Good to have skills
- Collaboration skills with data scientists, data engineers, and product stakeholders to convert business requirements into scalable ML models
- Contributions to open-source projects
If you like wild growth and working with happy, enthusiastic over-achievers, you'll enjoy your career with us!
Skills
- Machine Learning
- Azure
- Generative AI
- Computer Vision
- Deep Learning
- XGBoost
- MLOps
- Azure ML
- Azure Data Factory
- Azure Blob Storage
- Azure DevOps
- Azure Container Apps
- Azure OpenAI
- Retrieval-Augmented Generation
- LLM
- Azure AI
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