AI Solution Engineer

Spectraforce
Washington, DC, United States
2 days ago
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Role details

Contract type
Temporary contract
Employment type
Full-time (> 32 hours)
Experience level
Experienced
Experience required
2 years minimum
Working hours
Regular working hours
Job source

Tech stack

Artificial Intelligence Application Integration Architecture Application Performance Management Microsoft Azure BigQuery Graph Database Python (Programming Language) Link Analysis Meta-Data Management Role-Based Access Control Power BI Azure Active Directory
+10 more
Enterprise Data Management Digital Twin Data Processing Google Cloud GitHub Copilot Large Language Models Data Layers Microsoft Fabric AI Platforms Api Management

Job description

Job Summary: Translate how IMF economists work into a practical solution design and ensure the Cognitive Digital Twin produces results that are transparent, traceable, and defensible., * Work directly with SPR economists to understand how survey analysis is performed today and identify which activities can be automated, which require analyst review, and where AI can assist decision-making.

  • Document business requirements, user journeys, and solution specifications that guide engineering and AI development teams.
  • Define and maintain role-based prompts, agent instructions, and approved interaction patterns.
  • Establish and enforce evidence standards so every output can be traced back to its source survey, reporting period, methodology, and underlying calculations.
  • Lead the design of the project’s knowledge graph and semantic model, ensuring relationships between surveys, indicators, countries, methodologies, institutions, and analytical concepts are consistently represented and reusable across agents.
  • Define business use cases for graph-based reasoning, including cross-country comparisons, indicator lineage, concept discovery, policy-link analysis, and expert knowledge retrieval.
  • Own business validation criteria, benchmark scenarios, and “golden questions” used to determine whether the solution is ready to progress beyond prototyping.
  • Govern the lifecycle of agent assets, including instructions, skills, knowledge sources, evaluation criteria, and governance controls.
  • Review AI-generated code, configurations, and solution artifacts as the accountable business and architecture reviewer.
  • Prepare architecture, security, governance, and review materials for EARB and other approval bodies.
  • Partner with data architects and engineers to ensure the knowledge graph, retrieval mechanisms, and analytical models align with business expectations and governance requirements.

Requirements

  • 3+ years delivering data, analytics, or AI solutions.
  • 2+ years working with large language models, AI assistants, or agent-based systems.
  • Experience translating business processes into functional and technical specifications.
  • Demonstrated ability to work with researchers, economists, analysts, or other subject matter experts.
  • Strong facilitation and stakeholder engagement skills.
  • Ability to work onsite in Washington, DC using IMF-managed technology and development environments.

Required Technologies

  • Python, with the ability to review and validate data-processing and AI-integration code.
  • Azure OpenAI and Retrieval-Augmented Generation (RAG) architectures, including grounding, retrieval strategies, and Model Context Protocol (MCP).
  • Azure AI Foundry evaluation capabilities and model assessment practices.
  • GitHub Copilot, agent specifications, instruction libraries, and AI-assisted development practices.
  • Claude Code and Claude Skills, including authoring and governance of instructions, skills, and behavioral guardrails.
  • Microsoft Fabric, OneLake, and Power BI, including architectural decision-making for enterprise data platforms.
  • Knowledge graph technologies, semantic modeling, ontology design, metadata management, and graph-based retrieval patterns.
  • Microsoft Entra ID and role-based access control.
  • Microsoft Purview or equivalent solutions for cataloging, lineage, governance, and auditability.

Preferred

  • Azure API Management and Azure Monitor/Application Insights.
  • Responsible AI frameworks, content safety controls, and red-team testing practices.
  • Experience designing enterprise knowledge graphs and semantic layers for search, discovery, recommendation, and AI grounding.
  • Experience with Google Cloud AI services, including Vertex AI, Gemini, Agent Development Kit (ADK), and BigQuery, demonstrating cross-platform understanding of enterprise AI architectures.

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