AI Engineer – Agentic & Generative AI Specialist
Indexed description
Key Responsibilities
- Design and implement Agentic AI architectures for enterprise workflows.
- Integrate Generative AI capabilities (LLMs, multimodal models) into client solutions.
- Deliver end-to-end AI solutions from ideation to production deployment.
- Build, fine-tune, and evaluate LLM-based Q&A models using frameworks like AWS Bedrock, LangChain, HuggingFace Transformers, or OpenAI API.
- Design prompt templates and implement retrieval strategies to increase answer precision and factuality.
- Assist in creating data pipelines for training and testing, including annotation and evaluation tooling.
- Collaborate with product managers to translate user requirements into technical features.
- Participate in error analysis, iterative model improvement, and performance tuning.
- Document code and workflows clearly; follow best practices for reproducibility and code quality.
- Engage with clients to identify high-value AI use cases and define business benefits.
- Conduct workshops and assessments to align AI strategies with organisational goals.
- Provide thought leadership on AI adoption and emerging trends.
- Develop reusable frameworks and accelerators for Agentic AI and GenAI.
- Ensure compliance with AI ethics, security, and governance standards.
- Mentor junior engineers and guide cross-functional teams.
- Stay ahead of industry developments in Agentic AI, autonomous agents, and LLM ecosystems.
- Develop and deploy autonomous agents using Azure AI Agent Service, ensuring state management, memory persistence, and secure tool execution.
- Orchestrate complex multi-agent workflows to handle tasks requiring planning, reasoning, and tool use.
- Extend Microsoft 365 Copilot by building custom plugins and declarative agents within Microsoft Copilot Studio to surface enterprise data in Teams and Office apps.
- Operationalize AI solutions using Microsoft AI Foundry for model catalog management, Prompt Flow evaluation, and lifecycle governance.
- Architect scalable deployment patterns for agents using Azure Container Apps or Azure Functions, ensuring low-latency responses and cost-effective scaling.
- Strong experience in Agentic AI frameworks (e.g., LangGraph, AutoGen, CrewAI).
- Hands-on expertise with Generative AI (LLMs, prompt engineering, fine-tuning).
- Proficiency in Python and familiarity with deep learning/NLP libraries (LangChain, PyTorch, TensorFlow, HuggingFace Transformers).
- Experience with building Q&A systems and retrieval-augmented generation pipelines.
- Knowledge of vector databases or semantic search concepts.
- Familiarity with cloud AI platforms (AWS Bedrock, Azure OpenAI, GCP Vertex AI).
- Knowledge of MLOps practices and deployment pipelines.
- Ability to articulate business value of AI solutions and drive client conversations.
- Experience with Git, collaborative development workflows, and cloud infrastructure (AWS, Azure, GCP, Domino).
- Experience building custom copilots and plugins using Microsoft Copilot Studio and integrating them with Power Platform connectors.
- Proficiency in deploying AI workloads to Azure Container Apps (ACA), Azure Kubernetes Service (AKS), or serverless functions (Azure Functions) for event-driven agent triggers.
- Experience implementing RAG using Azure AI Search (vector, semantic, and hybrid search) and OneLake/Microsoft Fabric.
- Certification: Microsoft Certified: Azure AI Engineer Associate or similar specialized training in Azure OpenAI.
- Experience implementing Azure Managed Identities, Private Endpoints, and Content Safety filters for enterprise-grade agent security.
- Familiarity with tracing agent thought processes (tracing chains/flows) and monitoring token usage in Azure Monitor/App Insights.
- Excellent stakeholder management and communication skills.
- Ability to translate technical concepts into business outcomes.
- Experience in workshops, solution roadmaps, and executive presentations.
Why This Role Matters
Agentic AI and Generative AI are redefining automation and decision-making. This role offers the opportunity to lead transformative projects that combine autonomous agents, LLM-powered Q&A systems, and consultative expertise to deliver measurable business impact.
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