AI Strategy & Solution Architect
Indexed description
The ideal candidate combines deep expertise in Azure AI technologies, AI Agents, Agentic frameworks, enterprise architecture, and modern data platforms with strong consulting, stakeholder engagement, and solution leadership capabilities.
Key Responsibilities
AI Strategy & Solution Architecture
- Lead AI discovery workshops and help clients identify high-value AI and Agentic AI opportunities.
- Define AI transformation roadmaps aligned to business goals, operating models, and technology strategy.
- Architect enterprise AI platforms and solutions leveraging Azure AI Foundry, Azure OpenAI, Microsoft Fabric, Databricks, and Azure services.
- Provide executive-level guidance on AI adoption, governance, risk, and business value realization.
- Design AI Agent ecosystems that support planning, reasoning, tool usage, workflow orchestration, and autonomous execution.
- Define architectures for multi-agent systems, enterprise copilots, digital assistants, and intelligent automation solutions.
- Architect Retrieval-Augmented Generation (RAG), enterprise knowledge systems, semantic search, memory patterns, and contextual grounding strategies.
- Establish scalable approaches for integrating AI Agents with enterprise applications, data sources, and business processes.
- Lead solution design activities across AI Engineers, Data Engineers, Software Engineers, and Architects.
- Define reference architectures, reusable accelerators, development standards, and engineering best practices.
- Guide teams on architecture decisions, scalability, security, performance, observability, and operational readiness.
- Support major pursuits, proposals, solution estimates, and architecture reviews.
- Define Responsible AI, security, privacy, and governance controls for enterprise AI solutions.
- Ensure AI solutions align with regulatory, compliance, and organizational risk requirements.
- Establish evaluation, monitoring, and AI quality assurance frameworks.
- Drive adoption of MLOps, LLMOps, and AI operational excellence practices.
- Act as trusted advisor to C-level executives, technology leaders, and business stakeholders.
- Communicate complex technical concepts clearly to both technical and non-technical audiences.
- Lead architecture discussions, executive presentations, and steering committee engagements.
- Mentor architects and engineers while contributing to Avanade's AI thought leadership.
- Extensive experience designing and delivering AI and Generative AI solutions in enterprise environments.
- Deep understanding of LLMs, prompt engineering, AI evaluation, agent architectures, and reasoning frameworks.
- Hands-on experience with AI Agents, Agentic workflows, and autonomous systems.
- Experience with RAG architectures, embeddings, vector databases, semantic search, and enterprise knowledge platforms.
- Strong experience with:
- Azure AI Foundry
- Azure OpenAI Service
- Azure AI Search
- Azure Machine Learning
- Azure Data Services
- Microsoft Fabric
- Copilot technologies
- Experience architecting cloud-native solutions on Microsoft Azure.
- Experience with one or more of:
- Semantic Kernel
- AutoGen
- LangGraph
- LangChain
- CrewAI
- Microsoft Agent frameworks
- Understanding of orchestration, memory management, tool integration, and multi-agent collaboration patterns.
- Strong understanding of modern data architectures and data engineering practices.
- Experience with data governance, metadata, knowledge management, and enterprise data platforms.
- Knowledge of Databricks, Fabric Lakehouse, Azure Data Platform, and enterprise information management patterns.
- Proven experience leading architecture and solution design engagements.
- Experience engaging senior business and technology stakeholders.
- Strong commercial awareness, estimation, and proposal development capabilities.
- Ability to lead distributed, multidisciplinary delivery teams.
- Bachelor's or Master's degree in Computer Science, Data Science, Artificial Intelligence, Engineering, or related discipline.
- Microsoft AI and Azure certifications.
- Experience delivering AI solutions in regulated industries such as Financial Services, Government, Utilities, Telecommunications, or Healthcare.
- Experience with enterprise transformation and operating model change initiatives.
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