Job Type: Full Time
Job Category: IT

Job Description

RoleAI Architect
Location: 
New York, NY / Edison, NJ / Chicago, IL
FTE
  
 

Job Description

Must Have Technical/Functional Skills

o             Must have SI experience with larger IT service provider

o             10+ years of experience in software architecture or engineering, with at least 5+ years in AI/ML specifically.

o             Proven experience designing and developing multi-agent AI systems in a production environment.

o             Significant experience in the healthcare industry, with a deep understanding of clinical workflows, RCM, data standards (HL7, FHIR), and regulated environments.


Technical skills:

o             Expertise in multi-agent orchestration frameworks (e.g., LangChain, LangGraph, CrewAI, AutoGen).

o             Deep knowledge of LLM architectures, RAG implementation, and techniques for fine-tuning models.

o             Extensive experience with cloud platforms (AWS, Azure, or GCP) and related AI services.

o             Strong background in data engineering, including building ETL pipelines and managing vector stores.

o             Proficiency in Python and relevant AI/ML libraries (e.g., PyTorch, TensorFlow).

o             Hands-on experience with MLOps practices and tools (e.g., Docker, Kubernetes, MLflow).

Roles & Responsibilities

•              System architecture: Define the architectural vision and strategy for agentic AI solutions, designing end-to-end architectures that include model integration, orchestration frameworks, memory systems, and tool-use capabilities.

•             Technical leadership: Guide and mentor cross-functional teams of AI engineers, data scientists, and DevOps specialists on architectural patterns and best practices for building scalable and reliable agentic AI systems.

•             Cloud infrastructure and MLOps: Design and deploy multi-agent AI systems on cloud platforms (AWS, Azure, or GCP), building and managing cloud-native AI pipelines with MLOps best practices for monitoring, evaluating, and scaling agents.

•             Healthcare integration: Lead the integration of agentic AI solutions with existing healthcare systems, and other enterprise platforms, while ensuring data interoperability and security.

•             Responsible AI: Ensure the implementation of strong AI governance, security, and ethical practices throughout the agent lifecycle, including bias mitigation, fairness checks, and compliance with healthcare regulations like HIPAA.

•             Proof of concept and scaling: Lead proof-of-concept (PoC) initiatives to validate new agentic capabilities, then develop strategies to scale successful prototypes into production-ready systems.

•             Technology evaluation: Evaluate and integrate a wide range of open-source and proprietary AI tools and technologies, including vector databases, orchestration frameworks (e.g., LangChain, CrewAI), and cloud-native AI services.

•            Thought leadership: Stay current with the latest advancements in agentic AI, generative models, and multi-agent frameworks, driving innovation within the company and potentially presenting at industry conferences.

Required Skills
Performance Architect

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