TAG - The Aspen Group-posted 2 months ago
$205,000 - $240,000/Yr
Full-time • Senior
Chicago, IL
5,001-10,000 employees
Securities, Commodity Contracts, and Other Financial Investments and Related Activities

As part of our continued investment in AI-driven innovation, we are looking for a Principal AI Engineer to join our growing AI team. This is a hands-on role delivering innovative solutions for the healthcare enterprise. The ideal candidate will bring deep expertise in modern AI systems, multi-agent systems & frameworks, LLM-based architecture, and software engineering.

  • Architect and develop enterprise-scale multi-agent systems leveraging LLMs and autonomous agent frameworks using Google ADK, Agentspace, MCP, RAG, and A2A orchestration.
  • Design and implement RAG pipelines using BigQuery and Vertex AI Engine for knowledge grounding and factually accurate responses.
  • Optimize agents for orchestration, knowledge grounding, multi-step reasoning, and decision-making.
  • Design and implement distributed training workflows, online inference systems, and low latency serving architectures optimized for real-world performance, using Google cloud-native services.
  • Engineer scalable, secure, compliant and production-grade AI fabric and AI agent workflows using Vertex AI and modern cloud-native technologies.
  • Create reusable agent orchestration layers, observability hooks, and governance frameworks that accelerate Agentic AI adoption across TAG brands.
  • Partner with cross-functional stakeholders in translating business requirements into technical specifications.
  • Own the full AI development lifecycle - from data collection and implementation to deployment and monitoring.
  • Implement intelligent observability and automation strategies to ensure AI system reliability and performance at scale.
  • Ph.D. or Master's degree in AI/ML, Computer Science, or related technical field.
  • 2+ years of experience in Generative AI and Agentic AI engineering.
  • 10+ years of experience in AI/ML engineering, software engineering, or platform architecture.
  • Proven track record of building and deploying production-grade AI/ML systems at scale.
  • Deep understanding of modern AI model architectures (e.g., transformers, diffusion models) and system design.
  • Strong hands-on expertise with Vertex AI (including model training, pipelines, orchestration, deployment, and monitoring) and Google's Agentic AI stack.
  • Hands-on with one or more of these agent orchestration frameworks: Google ADK/Agentspace, LangChain, LangGraph, LlamaIndex, CrewAI or AutoGen.
  • Proficiency in Python, LLM integration workflows, MCP (Model Context Protocol) for tool integration and A2A (Agent-to-Agent) orchestration for multi-agent workflows.
  • Expertise in distributed training, online inference, and low latency serving architectures.
  • Experience with Kubernetes, Cloud Run, and Dataflow/PubSub for scalable deployment.
  • Experience with AI governance frameworks, responsible AI practices, and observability (Vertex AI Model Monitoring, BigQuery logging, Looker dashboards).
  • Contributions to open-source AI projects or publications in leading AI/ML conferences.
  • Experience with multi-modal models and advanced optimization strategies & frameworks.
  • Competitive benefits package including paid time off, health, dental, vision, and 401(k) savings plan with match.
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