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AI Engineer

Job in Scottsdale, Maricopa County, Arizona, 85251, USA
Listing for: Omni Inclusive
Full Time position
Listed on 2026-08-05
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), AI Reliability/ Performance Engineer
Job Description & How to Apply Below

Experienced AIML Engineer

We are seeking an experienced AIML Engineer to design, build, and operate AI/ML infrastructure and agentic systems. This role involves developing MCP servers and agents, integrating LLMs, and implementing RAG pipelines for production environments.

Key Responsibilities:

  • Design, build and operate MCP servers and MCP agents that host, orchestrate and monitor AI/agent workloads.
  • Develop agentic AI, prompt engineering patterns, LLM integrations and developer tooling for production use.
  • Own deployment, scaling, reliability and cost-efficiency on Kubernetes/Docker and Google Cloud with automated CI/CD.
  • Design and implement RAG (Retrieval Augmented Generation) pipelines and integrations with vector stores and retrieval tooling; use Lang Chain and Langfuse for orchestration, chaining, and observability.

Core Responsibilities:

  • Implement and maintain MCP server and agent code, APIs, and SDKs for model access and agent orchestration.
  • Design agent behavior, workflows and safety guards for agentic AI systems.
  • Create, test and iterate prompt templates, evaluation harnesses and grounding/chain of thought strategies.
  • Integrate LLMs and model providers (self hosted and cloud APIs) with unified adapters and telemetry.
  • Build developer tooling: CLI, local runner, simulators, and debugging tools for agents and prompts.
  • Containerize services (Docker), manage orchestration (Kubernetes/GKE), and optimize nodes, autoscaling and resource requests.
  • Ensure observability: logging, metrics, traces, dashboards, alerting and SLOs for model infra and agents.
  • Create runbooks, playbooks and incident response procedures; reduce MTTR and perform postmortems.
  • Design and maintain RAG workflows: document chunking, embeddings, vector indexing, retrieval strategies, re ranking and context injection.
  • Integrate and instrument Lang Chain for composable chains, agents and tooling; use Langfuse (or equivalent tracing) to capture prompts, model calls, RAG traces and evaluation telemetry.
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