Agentic AI Architect

๐Ÿข Inizio Partners Corp ยท all Inizio Partners Corp jobs
๐Ÿ“ United States
๐Ÿ“… Posted 2026-07-31 ยท via Himalayas
๐Ÿท Agentic-AI-Architecture,AI-ML-Architecture,Generative-AI-Engineering,AI-Platform-Engineering,Technical-Architecture,Agentic-AI-Architect,AI-Agent-Architect,Agentic-AI-Solutions-Architect,Agentic-AI-Engineer
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Role & Responsibilities Overview:
Platform & Integration Design

- Define integration architecture across - Lakehouse, ODS, document systems; Underwriting systems and third-party APIs

- Design configurable, metadata-driven framework for multi-LOB onboarding

- Define API/microservices patterns (Python/.NET hybrid)

Technical Development, Execution

- Perform hands on development and lead technical execution across AI, data, and platform teams

- Guide engineers (AI, data, full-stack) and ensure alignment with architecture

- Drive technical decisions and stakeholder communication

Governance, Safety & ModelOps

- Define AI safety and guardrails (PII, hallucination control, policy constraints)

- Establish ModelOps and PromptOps frameworks

- Ensure explainability, auditability, and traceability of AI outputs

Architecture & Technical Leadership

- Define end-to-end architecture for agentic AI-enabled platform across data, AI, orchestration, and integration layers

- Design and govern agentic orchestration framework for multi-step workflows

- Establish architecture patterns for - RAG and grounding, Vector search and retrieval, MCP tool access layer, prompt management and evaluation

AI & GenAI Enablement

- Define where and how to use - GenAI vs deterministic logic, agentic workflows vs pipeline workflows

- Establish multimodal integration approach combining structured, unstructured, and external data

- Design prompt lifecycle, evaluation, and optimization strategy

Candidate Profile:

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Experience : 10โ€“15+ years in software/data/AI engineering with 4โ€“6+ years in AI/ML/GenAI architecture

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Background : Strong experience in designing enterprise-scale platforms and distributed systems

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Domain (good to have) : Insurance / reinsurance / financial services

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Education : Bachelor's or Master's in Computer Science, Engineering, Data Science, or related field

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Profile Type : Hands-on architect with ability to balance strategy + execution

Technical skills :

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GenAI & Agentic Frameworks - Semantic Kernel/ LangGraph (or similar orchestration frameworks); LLM integration (Azure OpenAI, OpenAI APIs, etc.); Prompt engineering, prompt lifecycle design

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Retrieval & RAG - Azure AI Search (indexing, vector search, hybrid search); Embedding pipelines and retrieval optimization; RAG design, grounding strategies, context management

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Tool Access & Integration - MCP (Model Context Protocol) architecture and tool design; API design (FastAPI / REST / microservices); Integration with enterprise systems and third-party APIs

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AI Safety & Governance - NVIDIA NeMo Guardrails;Microsoft Presidio (PII detection/masking); Guardrails for prompt injection, hallucination control

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Evaluation & ModelOps - Azure AI Foundry (model hosting, versioning, monitoring); Evaluation frameworks (LLM-as-judge, test datasets); Prompt/version control, cost/latency monitoring

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DevOps & Observability - CI/CD pipelines (Azure DevOps / GitHub Actions); Logging, monitoring, observability (App Insights, etc.); Performance tuning and scalability

Originally posted on Himalayas

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