AI Architect- Associate Director
Kpmg India Services LlpJob Description
AI Architect- Associate Director
Job Title: Associate Director
Role: Senior AI Architect
Experience: 13 - 16 Years
About the Role
We are seeking a Senior AI Architect with deep expertise in Generative AI (GenAI), Retrieval-Augmented Generation (RAG), Agentic AI systems, Python, API development, System Design, MLOps, and production-grade AI/ML solution architecture. This role involves architecting and leading AI solutions, driving innovation, and mentoring junior engineers. You will work closely with business and technical stakeholders to deliver scalable, production-grade AI systems.
Key Responsibilities
Experience architecting end-to-end AI/ML solutions including model selection, inference design, data pipelines, evaluation strategy, monitoring, governance, and lifecycle management.
- Design and optimize RAG pipelines leveraging advanced retrieval strategies and vector databases.
- Build and integrate Agentic AI frameworks for autonomous workflows and decision-making at scale.
Define architecture patterns for reusable AI components, services, APIs, and platforms.
Design and develop REST APIs for AI/ML model serving and application integration.
Build scalable API services using frameworks such as FastAPI, Flask, or similar.
Design architectures that address: Scalability, Availability, Latency, Reliability, Fault tolerance, Security, Cost optimization, Maintainability, Observability.
Define MLOps/LLMOps processes for model versioning, prompt versioning, evaluation pipelines, model registry, and production monitoring.
Working knowledge of Docker, Kubernetes, CI/CD, model deployment, model versioning, monitoring, logging, rollback strategy, and production support.
Experience designing and deploying cloud-native AI solutions on Azure, AWS, or GCP. Azure experience with Azure OpenAI, Azure ML, Azure AI Search, AKS, Blob Storage, Key Vault, and Application Insights is preferred.
- Define best practices for model performance, scalability, and reliability in production environments.
- Collaborate with leadership to shape AI strategy, roadmap, and technical standards.
- Mentor and guide junior engineers on AI/ML development and deployment.
- Ensure compliance with ethical AI principles and security standards.
Required Skills
Programming & Software Engineering: Expert-level proficiency in Python, with strong software engineering fundamentals including modular design, testing, logging, exception handling, performance optimization, and production-grade development.
- Generative AI: Proven experience with Agentic AI solutions, RAG, fine-tuning, and deployment in production.
- Agentic AI: Hands-on experience with agentic AI frameworks such as LangChain, AutoGen, Semantic Kernel, or similar, with understanding of production-grade agent orchestration.
API Development & System Design: Strong experience in REST API development, microservices, scalable architecture, AI/ML model-serving APIs, and enterprise system design.
Cloud & MLOps: Experience with AWS, Azure, or GCP, along with MLOps/LLMOps practices including CI/CD, Docker, Kubernetes, model deployment, monitoring, versioning, and rollback.
- Strong leadership, communication, and stakeholder management skills.
Preferred Skills
- Exposure to advanced agent orchestration, tool calling, workflow automation, multi-agent patterns, and guardrails for safe execution.
- Familiarity with data engineering concepts such as ETL/ELT, SQL/NoSQL, Spark, Databricks, metadata management, and unstructured data pipelines.
Qualifications
- Bachelor’s or Master’s degree in Computer Science, AI/ML, or related field.
- 13 - 16 years of experience in AI/ML development, with at least 5 years in Generative AI and advanced AI systems.
Job Title: Associate Director
Role: Senior AI Architect
Experience: 13 - 16 Years
About the Role
We are seeking a Senior AI Architect with deep expertise in Generative AI (GenAI), Retrieval-Augmented Generation (RAG), Agentic AI systems, Python, API development, System Design, MLOps, and production-grade AI/ML solution architecture. This role involves architecting and leading AI solutions, driving innovation, and mentoring junior engineers. You will work closely with business and technical stakeholders to deliver scalable, production-grade AI systems.
Key Responsibilities
Experience architecting end-to-end AI/ML solutions including model selection, inference design, data pipelines, evaluation strategy, monitoring, governance, and lifecycle management.
- Design and optimize RAG pipelines leveraging advanced retrieval strategies and vector databases.
- Build and integrate Agentic AI frameworks for autonomous workflows and decision-making at scale.
Define architecture patterns for reusable AI components, services, APIs, and platforms.
Design and develop REST APIs for AI/ML model serving and application integration.
Build scalable API services using frameworks such as FastAPI, Flask, or similar.
Design architectures that address: Scalability, Availability, Latency, Reliability, Fault tolerance, Security, Cost optimization, Maintainability, Observability.
Define MLOps/LLMOps processes for model versioning, prompt versioning, evaluation pipelines, model registry, and production monitoring.
Working knowledge of Docker, Kubernetes, CI/CD, model deployment, model versioning, monitoring, logging, rollback strategy, and production support.
Experience designing and deploying cloud-native AI solutions on Azure, AWS, or GCP. Azure experience with Azure OpenAI, Azure ML, Azure AI Search, AKS, Blob Storage, Key Vault, and Application Insights is preferred.
- Define best practices for model performance, scalability, and reliability in production environments.
- Collaborate with leadership to shape AI strategy, roadmap, and technical standards.
- Mentor and guide junior engineers on AI/ML development and deployment.
- Ensure compliance with ethical AI principles and security standards.
Required Skills
Programming & Software Engineering: Expert-level proficiency in Python, with strong software engineering fundamentals including modular design, testing, logging, exception handling, performance optimization, and production-grade development.
- Generative AI: Proven experience with Agentic AI solutions, RAG, fine-tuning, and deployment in production.
- Agentic AI: Hands-on experience with agentic AI frameworks such as LangChain, AutoGen, Semantic Kernel, or similar, with understanding of production-grade agent orchestration.
API Development & System Design: Strong experience in REST API development, microservices, scalable architecture, AI/ML model-serving APIs, and enterprise system design.
Cloud & MLOps: Experience with AWS, Azure, or GCP, along with MLOps/LLMOps practices including CI/CD, Docker, Kubernetes, model deployment, monitoring, versioning, and rollback.
- Strong leadership, communication, and stakeholder management skills.
Preferred Skills
- Exposure to advanced agent orchestration, tool calling, workflow automation, multi-agent patterns, and guardrails for safe execution.
- Familiarity with data engineering concepts such as ETL/ELT, SQL/NoSQL, Spark, Databricks, metadata management, and unstructured data pipelines.
Qualifications
- Bachelor’s or Master’s degree in Computer Science, AI/ML, or related field.
- 13 - 16 years of experience in AI/ML development, with at least 5 years in Generative AI and advanced AI systems.
Job Title: Associate Director
Role: Senior AI Architect
Experience: 13 - 16 Years
About the Role
We are seeking a Senior AI Architect with deep expertise in Generative AI (GenAI), Retrieval-Augmented Generation (RAG), Agentic AI systems, Python, API development, System Design, MLOps, and production-grade AI/ML solution architecture. This role involves architecting and leading AI solutions, driving innovation, and mentoring junior engineers. You will work closely with business and technical stakeholders to deliver scalable, production-grade AI systems.
Key Responsibilities
Experience architecting end-to-end AI/ML solutions including model selection, inference design, data pipelines, evaluation strategy, monitoring, governance, and lifecycle management.
- Design and optimize RAG pipelines leveraging advanced retrieval strategies and vector databases.
- Build and integrate Agentic AI frameworks for autonomous workflows and decision-making at scale.
Define architecture patterns for reusable AI components, services, APIs, and platforms.
Design and develop REST APIs for AI/ML model serving and application integration.
Build scalable API services using frameworks such as FastAPI, Flask, or similar.
Design architectures that address: Scalability, Availability, Latency, Reliability, Fault tolerance, Security, Cost optimization, Maintainability, Observability.
Define MLOps/LLMOps processes for model versioning, prompt versioning, evaluation pipelines, model registry, and production monitoring.
Working knowledge of Docker, Kubernetes, CI/CD, model deployment, model versioning, monitoring, logging, rollback strategy, and production support.
Experience designing and deploying cloud-native AI solutions on Azure, AWS, or GCP. Azure experience with Azure OpenAI, Azure ML, Azure AI Search, AKS, Blob Storage, Key Vault, and Application Insights is preferred.
- Define best practices for model performance, scalability, and reliability in production environments.
- Collaborate with leadership to shape AI strategy, roadmap, and technical standards.
- Mentor and guide junior engineers on AI/ML development and deployment.
- Ensure compliance with ethical AI principles and security standards.
Required Skills
Programming & Software Engineering: Expert-level proficiency in Python, with strong software engineering fundamentals including modular design, testing, logging, exception handling, performance optimization, and production-grade development.
- Generative AI: Proven experience with Agentic AI solutions, RAG, fine-tuning, and deployment in production.
- Agentic AI: Hands-on experience with agentic AI frameworks such as LangChain, AutoGen, Semantic Kernel, or similar, with understanding of production-grade agent orchestration.
API Development & System Design: Strong experience in REST API development, microservices, scalable architecture, AI/ML model-serving APIs, and enterprise system design.
Cloud & MLOps: Experience with AWS, Azure, or GCP, along with MLOps/LLMOps practices including CI/CD, Docker, Kubernetes, model deployment, monitoring, versioning, and rollback.
- Strong leadership, communication, and stakeholder management skills.
Preferred Skills
- Exposure to advanced agent orchestration, tool calling, workflow automation, multi-agent patterns, and guardrails for safe execution.
- Familiarity with data engineering concepts such as ETL/ELT, SQL/NoSQL, Spark, Databricks, metadata management, and unstructured data pipelines.
Qualifications
- Bachelor’s or Master’s degree in Computer Science, AI/ML, or related field.
- 13 - 16 years of experience in AI/ML development, with at least 5 years in Generative AI and advanced AI systems.
Experience Level
Mid LevelJob role
Job requirements
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