Sr. AI Technology Architect

Wise Skulls

Charlotte (NC)

On-site

USD 180,000 - 240,000

Full time

2 days ago
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Job summary

Responsibilities include defining enterprise AI architecture, deploying LLM-powered systems, and guiding AI infrastructure across major cloud platforms. Strong leadership and 15+ years of AI/technology architecture experience are required.

Qualifications

  • 15+ years of experience in AI/ML, Data Science, or Technology Architecture.
  • Strong expertise in Generative AI, LLMs, RAG, and Agentic AI systems.
  • Proficient in Python, APIs, microservices, and data engineering frameworks.
  • Experience with cloud platforms (AWS, Azure, GCP) and containerization technologies.
  • Deep understanding of AI infrastructure including GPU optimization and benchmarking.
  • Proven ability to lead large-scale transformation programs.

Responsibilities

  • Define and govern enterprise AI architecture including LLMs, RAG, Agentic AI, and Edge AI systems.
  • Establish reference architectures for cloud-native AI, GPU-based inferencing, and distributed workloads.
  • Architect and deploy LLM-powered solutions using RAG, embeddings, vector databases, and orchestration frameworks.
  • Design Agentic AI workflows leveraging tools such as LangChain, LangGraph, Azure AI, and Databricks.
  • Lead AI infrastructure strategy including GPU optimization and high-performance compute environments.
  • Build and scale AI platforms across AWS, Azure, and GCP ecosystems.
  • Lead development of advanced AI/ML models across NLP, computer vision, graph ML, and forecasting domains.
  • Architect Edge AI solutions for low-latency, distributed decision-making systems.
  • Establish governance for responsible AI, security, and compliance.
  • Mentor teams and drive innovation and capability development.

Skills

Generative AI
LLMs
Agentic AI
Python
Leadership
Data engineering
Cloud platforms

Education

Advanced degree in AI/Data Science

Job description

We are looking for a visionary AI Senior Technology Architect to lead enterprise-scale AI transformation initiatives. This role requires deep expertise in Generative AI, Agentic AI systems, AI infrastructure, and cloud-native architectures, with a strong focus on delivering scalable, high-performance AI solutions and driving business impact. This role is critical to driving AI-first enterprise strategy, enabling next-generation capabilities through Agentic AI, LLM ecosystems, and edge intelligence while delivering measurable business value.

Important

Visa: USC and GC only

Location: Irving, TX and Charlotte, NC (Onsite)

Key Responsibilities
  • Define and govern enterprise AI architecture including LLMs, RAG, Agentic AI, and Edge AI systems.
  • Establish reference architectures for cloud-native AI, GPU-based inferencing, and distributed workloads.
  • Architect and deploy LLM-powered solutions using RAG, embeddings, vector databases, and orchestration frameworks.
  • Design Agentic AI workflows leveraging tools such as LangChain, LangGraph, Azure AI, and Databricks.
  • Lead AI infrastructure strategy including GPU optimization and high-performance compute environments.
  • Build and scale AI platforms across AWS, Azure, and GCP ecosystems.
  • Lead development of advanced AI/ML models across NLP, computer vision, graph ML, and forecasting domains.
  • Architect Edge AI solutions for low-latency, distributed decision-making systems.
  • Establish governance for responsible AI, security, and compliance.
  • Mentor teams and drive innovation and capability development.
Required Qualifications
  • 15+ years of experience in AI/ML, Data Science, or Technology Architecture.
  • Strong expertise in Generative AI, LLMs, RAG, and Agentic AI systems.
  • Proficient in Python, APIs, microservices, and data engineering frameworks.
  • Experience with cloud platforms (AWS, Azure, GCP) and containerization technologies.
  • Deep understanding of AI infrastructure including GPU optimization and benchmarking.
  • Proven ability to lead large-scale transformation programs.
Preferred Qualifications & Experience
  • Experience in banking, telecom, healthcare, energy, or supply chain domains.
  • Exposure to Edge AI, O-RAN architectures, and distributed systems.
  • Advanced degree (PhD/Master’s) in AI, Data Science, or related field.
  • Experience in Enterprise adoption of AI platforms and architecture standards.
  • Experience in Scalable deployment of AI solutions delivering measurable outcomes.
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