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Artificial Intelligence Senior Associate

Job in Dearborn, Wayne County, Michigan, 48120, USA
Listing for: HTC Global Services Inc
Full Time position
Listed on 2026-09-01
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer
Job Description & How to Apply Below
Artificial Intelligence Senior Associate Overview / Summary We are seeking an Artificial Intelligence Senior Associate to develop and deploy production-grade AI applications, algorithms, and intelligent automation solutions. This role focuses on building multi-agent systems, RAG pipelines, data-driven applications, and AI services that solve complex problems, generate recommendations, extract patterns, make predictions, and enable self-service capabilities. The role involves working across generative AI, natural language processing, deep learning, cognitive automation, intelligent process automation, and related AI technologies, with a strong emphasis on production software engineering, scalability, safety, evaluation, and observability.

Key Responsibilities Understand business requirements and develop AI algorithms, models, and programs to solve complex problems, generate recommendations, extract patterns, make predictions, interpret sensor data, orchestrate automation, and enable self-service capabilities. Architect and deploy production multi-agent orchestration systems using modern agent frameworks with state management and checkpointing. Design and product ionize RAG pipelines, including chunking, embeddings, hybrid retrieval, and reranking. Build data-driven applications that translate data into actionable intelligence through large-scale experimentation.

Develop innovative applications using generative AI, deep learning, natural language processing, image processing, cognitive automation, intelligent process automation, reinforcement learning, virtual assistants, and specialized programming. Research and optimize AI technologies to improve the efficiency and accuracy of data analysis and automation. Design and implement safe, least-privilege, validated execution of LLM-generated SQL. Build CI/CD, containerization, and infrastructure-as-code solutions for deploying AI services in cloud environments.

Implement evaluation pipelines and observability/tracing for AI and agent systems, including evaluation datasets, LLM-as-judge scoring, and regression monitoring. Implement guardrails, prompt-injection defenses, and human-in-the-loop approval checkpoints to support safe and reliable AI outputs. Design cost and latency optimization strategies, including tiered model routing and caching. Integrate validated AI outputs with operational systems and reporting pipelines. Collaborate with data scientists to product ionize AI prototypes into scalable, monitored services.

Establish versioning, testing, and safe rollout practices for evolving AI and agent logic.

Required Qualifications Bachelor's degree in Computer Science, Software Engineering, or a related field, or equivalent practical experience. 3+ years of experience building production software systems, including 1–2+ years working on ML/AI or LLM-based applications. Proven experience designing and deploying multi-agent or multi-service architectures in production. Strong Python proficiency, including asynchronous/concurrent programming.

Experience with backend frameworks such as FastAPI or Flask. Hands-on experience with agent orchestration frameworks such as Lang Graph, CrewAI, Llama Index, or equivalent. Experience building RAG pipelines, including vector databases, embeddings, chunking strategies, and retrieval evaluation. Cloud deployment experience, ideally with Google Cloud Platform.

Experience with cloud technologies such as Big Query, Cloud Run/GKE, Vertex AI, and Pub/Sub, or equivalent AWS/Azure services. Strong SQL skills and experience with cloud data warehouses.

Experience with containerization and CI/CD, including Docker, Kubernetes, and Git Hub Actions/Cloud Build. Experience building evaluation and observability pipelines for LLM/agent systems, including offline evaluation datasets, LLM-as-judge scoring, and tracing tools such as Lang Smith, Langfuse, Open Telemetry, or equivalent. Understanding of LLM safety practices, including guardrails, output validation, prompt-injection defense, and safe execution of AI-generated code or SQL. Strong software engineering fundamentals, including API design, testing, version control, and…
Position Requirements
10+ Years work experience
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