Total Experience: 10 & Above years
Role Description:
- Own end-to-end AI solution architecture from use-case discovery, feasibility assessment, experimentation, production deployment, and ongoing operational monitoring.
- Translate business objectives into AI solution designs by defining AI use cases, decision boundaries, architecture patterns, acceptance criteria, and measurable business outcomes.
- Design and govern AI platforms and solutions across foundation models, RAG, agent orchestration, data sources, vector search, APIs, cloud infrastructure, security controls, and human-in-the-loop processes.
- Establish AI governance, risk, and evaluation frameworks covering model quality, hallucination, groundedness, security, privacy, responsible AI, compliance, performance, cost, and operational readiness.
- Provide technical leadership and architecture assurance by guiding engineering and data science teams, reviewing AI implementations, validating solution effectiveness, and communicating architecture decisions, risks, and trade-offs to business and technology stakeholders
Required Skill Set:
Enterprise AI Solution Architecture
Proven experience designing and delivering end-to-end AI, Generative AI, Machine Learning, RAG, and Agentic AI solutions from use-case discovery through production deployment.
Generative AI, RAG & Agentic AI Expertise
Strong hands-on knowledge of Foundation Models, Prompt Engineering, Embeddings, Vector Databases, Retrieval-Augmented Generation (RAG), Tool Calling, Agent Orchestration, and AI Guardrails.
Cloud AI Platforms & Integration Architecture
Experience with Azure AI Services, Azure OpenAI, Model Hosting, APIs, Event-Driven Integration, Containers, Identity & Access Management, and scalable cloud-native AI architectures.
MLOps / LLMOps, AI Evaluation & Production Operations
Experience defining model evaluation frameworks, observability, monitoring, deployment pipelines, versioning, rollback mechanisms, drift detection, and operational readiness for production AI systems.
Responsible AI, AI Security & Governance
Strong understanding of AI governance, model risk management, privacy engineering, security controls, human-in-the-loop designs, compliance requirements, AI safety, bias/fairness assessment, and responsible AI practices.
“Tekshapers is an equal opportunity employer and will consider all applications without regards to race, sex, age, color, religion, national origin, veteran status, disability, sexual orientation, gender identity, genetic information or any characteristic protected by law.”
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