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Senior Architect – Ontology / Knowledge Graph

e-IT Professionals Corp.Irving, TX🇺🇸United StatesPosted Oct 6, 2026

Quick Overview

Seniority
Mid Senior
Work mode
Hybrid
Location
Irving, TX, United States
Posted
4 days ago
MicroservicesAzureComplianceDatabricksGenerative AI

Job Description

Position Overview

We are seeking a highly experienced Senior Architect – Ontology / Knowledge Graph with deep expertise in Ontology, Knowledge Graphs, Semantic Technologies, Azure, Data Architecture, and AI-enabled solutions.

The ideal candidate will have a strong background in enterprise architecture and modern data platforms, with proven experience designing scalable semantic and knowledge-driven architectures for complex enterprise environments. Experience with Stardog, Databricks, healthcare/life sciences, and agentic AI development ecosystems is highly desirable.

The architect will play a key role in defining enterprise architecture, establishing governance standards, and enabling AI-augmented and agentic development workflows across complex, distributed systems.

Key Responsibilities

  • Design and govern enterprise-scale ontology, semantic, and knowledge graph platforms.
  • Define architecture for AI-enabled, data-driven, and semantic solutions using modern cloud platforms.
  • Develop enterprise architecture strategies covering Knowledge Graphs, Ontologies, Semantic Technologies, Azure, and modern data platforms.
  • Design cloud-native applications, APIs, integrations, microservices, and distributed systems.
  • Define architectural standards and technical roadmaps across Product, Engineering, Security, Data, and Business teams.
  • Lead modernization of legacy applications while maintaining business continuity and operational stability.
  • Architect solutions that support AI-augmented and agentic development workflows.
  • Define architectural intent and standards that autonomous coding agents can follow.
  • Break complex features and technical initiatives into agent-executable tasks.
  • Establish governance, permissions, guardrails, review processes, and quality checks for AI-generated code.
  • Integrate agentic workflows into CI/CD pipelines and SDLC processes.
  • Guide the use of agentic IDEs across complex multi-service applications, legacy modernization initiatives, and large codebases/monorepos.
  • Evaluate the impact of AI agents and agentic IDEs on SDLC, CI/CD, security, compliance, technical debt, and software quality.
  • Establish security and governance practices for autonomous code execution.
  • Ensure auditability, traceability, compliance, and security of AI-assisted development workflows.
  • Mentor engineering teams on balancing AI autonomy with correctness, maintainability, security, and quality.
  • Facilitate architecture discussions and communicate complex technical concepts effectively to executive and technical stakeholders.

Required Skills & Experience

  • 12+ years of overall IT/software engineering experience.
  • 10+ years of progressive experience in software engineering, solution architecture, or enterprise application development.
  • 5+ years of experience leading architecture for enterprise applications or complex technology solutions.
  • Strong expertise in:
    • Ontology
    • Knowledge Graphs
    • Semantic Technologies
    • Semantic Web
    • Data Architecture
    • Enterprise Data Platforms
  • Strong experience with Azure / Microsoft Azure.
  • Experience designing cloud-native applications, APIs, integrations, and distributed systems.
  • Experience designing AI-enabled or data-driven solutions using modern cloud platforms.
  • Strong understanding of enterprise architecture, application modernization, and technology governance.
  • Proven ability to influence architecture decisions across Product, Engineering, Security, Data, and Business stakeholders.
  • Strong executive communication, facilitation, collaboration, and relationship-management skills.

Agentic AI / AI-Assisted Development

Strong experience or understanding of agentic development environments and AI-assisted software engineering, including:

  • Agentic IDEs and autonomous coding agents.
  • Defining architectural intent that AI agents can execute.
  • Breaking complex development requirements into agent-executable tasks.
  • Establishing guardrails and governance for AI autonomy.
  • Integrating AI agents into CI/CD pipelines.
  • Supervising AI agents across:
    • Multi-service systems
    • Large codebases / monorepos
    • Legacy modernization
    • Complex enterprise applications
  • Understanding security implications of autonomous code execution.
  • Compliance, auditability, and traceability of AI-assisted development.
  • AI-assisted SDLC operating models.
  • Establishing code-review practices and quality controls for AI-generated code.

Preferred / Nice-to-Have Skills

  • Stardog
  • Databricks
  • RDF
  • OWL
  • SPARQL
  • Semantic Web technologies
  • Healthcare / Healthcare IT
  • Life Sciences
  • Knowledge Graph platforms
  • AI/ML platforms
  • Generative AI / Agentic AI
  • Microservices and distributed architecture
  • CI/CD and DevOps
  • Enterprise application modernization

Education

Bachelor's or Master's degree in Engineering, Computer Science, Information Technology, or a related field.

Acceptable qualifications include:

  • BE / BTech
  • ME / MTech
  • BSc / MSc

Technical certifications across cloud, data, architecture, or AI technologies are desirable.

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