Gen AI Architect

GlobalPoint

Charlotte (NC)

On-site

USD 180,000 - 240,000

Full time

2 days ago
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Job summary

GlobalPoint in Charlotte, NC seeks an experienced AI/ML Architect to lead architecture and strategy for GenAI and traditional ML. You will design end-to-end AI solutions, integrate LLMs and RAG frameworks, and drive scalable deployment with governance and observability.

Lead engineering teams, collaborate with stakeholders, and shape cloud-based AI tool choices while ensuring security and compliance throughout the lifecycle.

Qualifications

  • Experience leading AI/ML architecture and strategy in enterprise environments.
  • Strong expertise designing and deploying large-scale AI/ML solutions including LLMs and GenAI.
  • Proficiency with AI/ML tools and frameworks (TensorFlow, PyTorch, Hugging Face, LangChain).
  • Agentic AI: tracing, observability, and LLM monitoring experience.
  • Deep understanding of data workflows, feature engineering, training, evaluation, and deployment.
  • Knowledge of cloud platforms (AWS/Azure/GCP) for AI deployment.
  • Familiarity with governance, security, explainability, and ethical AI standards.
  • Experience building CI/CD pipelines for AI/ML including model versioning and deployment.

Responsibilities

  • Define and drive AI/ML architecture and roadmap for GenAI and traditional ML.
  • Design end-to-end AI solutions from data ingestion to monitoring.
  • Lead integration of LLMs and RAG frameworks using LangChain or similar.
  • Develop cutting-edge AI/ML solutions with scalable deployment.
  • Collaborate with stakeholders to translate requirements into scalable AI solutions.
  • Evaluate and select AI/ML tools and cloud services based on use case needs.
  • Ensure governance, security, explainability, and regulatory compliance.
  • Guide engineering teams on scalable, reliable AI components.
  • Partner with DevOps to establish CI/CD pipelines for AI deployment.
  • Stay abreast of AI research, tracing frameworks, and observability practices.

Skills

AI/ML architecture
Enterprise leadership
LLMs & GenAI
CI/CD for AI
Governance & ethics
Data workflows
Cloud platforms
Model monitoring
Python & ML frameworks

Education

Advanced degree in CS/Data Science/AI

Tools

TensorFlow
PyTorch
Hugging Face
LangChain
LangGraph

Job description

  • Define and drive the AI/ML architecture and roadmap, including both traditional machine learning and Generative AI (GenAI) use cases.
  • Design comprehensive end-to-end AI solutions covering data ingestion, feature engineering, model training, inference pipelines, and monitoring frameworks.
  • Lead the integration of Large Language Models (LLMs) and Retrieval-Augmented Generation (RAG) frameworks, utilizing tools such as LangChain, LangGraph, or similar.
  • Develop and deliver cutting-edge AI/ML solutions, incorporating genetic AI techniques, innovative design principles, and scalable deployment strategies.
  • Gain a good understanding of traditional AI/ML approaches and leverage this knowledge to create robust, hybrid solutions.
  • Collaborate with business stakeholders to translate requirements into scalable AI-driven technical solutions.
  • Evaluate and select appropriate AI/ML tools, cloud services, frameworks, and libraries based on use case needs and industry best practices.
  • Ensure models adhere to governance, security, explainability, and regulatory compliance, embedding ethical AI principles into system design.
  • Guide engineering teams in the implementation of AI components, emphasizing scalability, reliability, and performance optimization.
  • Partner with DevOps teams to establish CI/CD pipelines for AI, including model versioning, deployment automation, and ongoing A/B testing.
  • Keep abreast of the latest industry research, breakthroughs, and emerging trends in AI, including tracing frameworks, LLM observability, and other innovative areas, recommending adoption of best practices and solutions.

Charlotte, NC

Long term

Responsibilities
  • Define and drive the AI/ML architecture and roadmap, including both traditional machine learning and Generative AI (GenAI) use cases.
  • Design comprehensive end-to-end AI solutions covering data ingestion, feature engineering, model training, inference pipelines, and monitoring frameworks.
  • Lead the integration of Large Language Models (LLMs) and Retrieval-Augmented Generation (RAG) frameworks, utilizing tools such as LangChain, LangGraph, or similar.
  • Develop and deliver cutting-edge AI/ML solutions, incorporating genetic AI techniques, innovative design principles, and scalable deployment strategies.
  • Gain a good understanding of traditional AI/ML approaches and leverage this knowledge to create robust, hybrid solutions.
  • Collaborate with business stakeholders to translate requirements into scalable AI-driven technical solutions.
  • Evaluate and select appropriate AI/ML tools, cloud services, frameworks, and libraries based on use case needs and industry best practices.
  • Ensure models adhere to governance, security, explainability, and regulatory compliance, embedding ethical AI principles into system design.
  • Guide engineering teams in the implementation of AI components, emphasizing scalability, reliability, and performance optimization.
  • Partner with DevOps teams to establish CI/CD pipelines for AI, including model versioning, deployment automation, and ongoing A/B testing.
  • Keep abases of the latest industry research, breakthroughs, and emerging trends in AI, including tracing frameworks, LLM observability, and other innovative areas, recommending adoption of best practices and solutions.
Requirements
  • Experience in leading AI/ML architecture and strategy in enterprise environments.
  • Strong expertise in designing and deploying large-scale AI/ML solutions, including LLMs, RAG frameworks, and genetic AI techniques.
  • Experience with AI/ML tools and frameworks such as TensorFlow, PyTorch, Hugging Face, LangChain, LangGraph, or similar.
  • Agentic AI experience: design, develop, and deliver tracing frameworks and LLM observability solutions.
  • Deep understanding of data workflows, feature engineering, model training, evaluation, and deployment.
  • Good understanding of traditional AI/ML concepts, alongside expertise in generative AI and related frameworks.
  • Hands-on experience with AI/ML model observability, tracing frameworks, and monitoring solutions.
  • Knowledge of cloud platforms (AWS, Azure, GCP) and services tailored for AI deployment.
  • Familiarity with model governance, security, explainability, and ethical AI standards.
  • Experience in developing CI/CD pipelines for AI/ML, including model versioning, monitoring, and performance tuning.
  • Strong problem-solving, communication, and stakeholder management skills.
Preferred, But Not Required
  • Advanced degree (Ph.D., Master s) in Computer Science, Data Science, AI, or related fields.
  • Publications or practical contributions to AI research and open-source projects.
  • Experience working in regulated industries or environments requiring compliance and governance.
  • Familiarity with project management and Agile practices.
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