AI Architect
LogicsT Technologies
- New York, New York, United States
- New York, New York, United States
À propos
Job DescriptionResponsibilities
- Define the architectural vision for agentic AI solutions, including model integration, orchestration frameworks (e.g., LangChain, LangGraph), memory systems, and tool-use capabilities.
- Lead and mentor teams of AI engineers, data scientists, and DevOps specialists, guiding them on architectural patterns, best practices, and scalable system design.
- Design, deploy, and manage multi-agent AI systems on cloud platforms (AWS, Azure, or GCP), ensuring AI pipelines are optimized with MLOps practices for monitoring, scaling, and evaluation.
- Lead integration efforts of AI solutions into healthcare systems, ensuring data interoperability, security, and compliance with regulations (e.g., HIPAA, HL7, FHIR).
- Implement AI governance frameworks, ensuring fairness, transparency, and compliance with healthcare regulations. Lead efforts in bias mitigation and ethical AI practices.
- Oversee the development of PoC initiatives, validate new AI capabilities, and scale successful prototypes into production-ready systems.
- Assess and integrate AI tools, including vector databases and orchestration frameworks, to build cutting-edge AI solutions.
- Stay current on the latest trends in agentic AI and multi-agent systems. Contribute to the AI community by driving innovation and presenting at industry conferences.
Required Qualifications
- Experience: 10+ years in software architecture or engineering, with 5+ years specializing in AI/ML. Proven experience developing multi-agent AI systems in production.
- Healthcare Industry Expertise: Significant experience in the healthcare sector, understanding clinical workflows, RCM, and healthcare data standards (e.g., HL7, FHIR).
- Technical Skills:
- Expertise in multi-agent orchestration frameworks (e.g., LangChain, LangGraph, CrewAI).
- Deep knowledge of LLM architectures, RAG implementation, and fine-tuning models.
- Extensive experience with cloud platforms (AWS, Azure, GCP) and AI services.
- Strong background in data engineering, ETL pipelines, and vector store management.
- Proficiency in Python and AI/ML libraries (e.g., PyTorch, TensorFlow).
- Hands-on experience with MLOps tools (e.g., Docker, Kubernetes, MLflow).
- AI Governance: Strong understanding of AI governance, ethics, and compliance, particularly in regulated environments like healthcare.
Preferred Qualifications
- Education: Advanced degree (Master's or PhD) in Computer Science, AI, Data Science, or a related field.
- Certifications: Relevant certifications in cloud platforms (AWS, Azure, GCP) or AI/ML.
- Thought Leadership: Experience presenting at conferences, contributing to research, or writing thought leadership articles on AI/ML topics.
Compétences linguistiques
- English
Avis aux utilisateurs
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