ID Software/Application Engineer Professional (408)

Environmental and Safety Solutions, Inc.

$130K — $155K *
Information Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree (or equivalent) with 8+ years in software engineering.
  • 2-3 years of experience in Generative AI, LLM applications, or Agentic AI solutions.
  • Proficient in building production-grade cloud applications and integrations.
  • Experience with front-end development using React and TypeScript, and back-end development using Node.js.
  • Hands-on experience with Azure AI Foundry, LLM APIs, and Retrieval-Augmented Generation techniques.
  • Familiarity with Agentic AI frameworks and automation workflows.
  • Strong understanding of LLMOps, CI/CD processes, and containerization technologies.

Responsibilities

  • Build Generative AI and RAG applications for various use cases.
  • Develop advanced RAG pipelines utilizing Azure AI's capabilities.
  • Create secure integrations between AI agents and enterprise tools.
  • Design single and multi-agent systems for automation and decision-making.
  • Implement agent behavior management and resilient error-handling patterns.
  • Evaluate and enhance agent performance with quality assessment metrics.
  • Monitor and instrument agent workflows for operational insights.

Benefits

  • Collaborate with a dynamic team of experts in AI software solutions.
  • Opportunity to work on cutting-edge Generative AI technologies.
  • Engage in high-impact projects within an enterprise environment.
  • Access to professional development and continuous learning resources.
Full Job Description
About the Job

Job Summary:

We are seeking a highly skilled Senior Agentic AI Engineer to design, develop, and deploy modern Agentic AI solutions. This role focuses on building production-grade Generative AI applications, multi-agent workflows, and Retrieval-Augmented Generation (RAG) pipelines for enterprise use on Microsoft Azure.

You will collaborate with architects, software engineers, data engineers, and business stakeholders to translate requirements into AI-powered software solutions. The ideal candidate brings hands-on experience developing, evaluating, and operating Agentic AI solutions, supported by strong front-end and back-end engineering fundamentals.

Major Responsibilities:

  • Build Generative AI & Retrieval-Augmented Generation LLM Applications.
  • Build LLM-powered applications for text generation, summarization, Q&A, conversational AI, enterprise knowledge search, and multi-agent orchestration.
  • Develop advanced RAG pipelines using embeddings, Azure AI Search vector and hybrid retrieval, document chunking, metadata filtering, reranking, citations, and grounding techniques with enterprise data.
  • Build secure, reliable integrations between AI agents and enterprise tools, REST APIs, relational databases, and event-driven services.
  • Develop and maintain user-facing AI application experiences using React and TypeScript, and supporting application services using Node.js or comparable back-end technologies.


AI Agents & Agentic Automation:

  • Design and implement single-agent and multi-agent systems for intelligent automation, decisioning, and complex workflows.
  • Build autonomous and human-in-the-loop agents that plan, reason, act, and interact with tools, APIs, enterprise data, and event-driven systems.
  • Develop agentic workflows using Microsoft Agent Framework, Azure AI Foundry services, or comparable modern orchestration frameworks.
  • Implement configuration-driven agent behavior, prompt and tool management, authorization boundaries, and resilient error-handling patterns.
  • Define and automate evaluation approaches for agent quality, including groundedness, relevance, citation quality, safety, and regression testing.
  • Instrument agent workflows for traces, tool calls, latency, token usage, errors, and operational metrics using OpenTelemetry, Application Insights, or comparable observability platforms.
  • Build highly scalable, secure, containerized solutions with CI/CD, health checks, horizontal scaling, and production monitoring.


Education and Experience Requirements:

  • Requires a bachelor's degree (or international equivalent) and 8+ years of relevant software engineering experience.
  • 2-3 years of hands-on Generative AI, LLM application, or Agentic AI solution development experience.
  • Strong software engineering background with experience designing and deploying production-grade cloud applications.
  • Experience building front-end applications with React and TypeScript, and back-end services with Node.js or comparable application frameworks.
  • Hands-on experience building Generative AI and RAG applications with Azure AI Foundry, Azure OpenAI, Azure AI Search, LLM APIs, embeddings, vector or hybrid search, knowledge retrieval, grounding, and citations.
  • Experience with Agentic AI frameworks such as Microsoft Agent Framework, Semantic Kernel, LangGraph, AutoGen, or comparable orchestration frameworks; including single-agent and multi-agent systems, tool-calling workflows, and human-in-the-loop controls.
  • Experience evaluating and improving agent quality, including prompt engineering, test datasets, LLM-based evaluation, safety checks, and production feedback loops.
  • Strong knowledge of LLMOps, CI/CD, containerization (Docker and Kubernetes), observability, and production operations for AI applications.
  • Good understanding of RESTful API principles, asynchronous application patterns, secure integrations, relational databases, SQL, and data-access patterns; familiarity with SQL/NoSQL data stores and data engineering or ETL pipelines.


Experience working in an enterprise environment with large-scale, secure AI deployments, including identity, authorization, data privacy, compliance, and production monitoring.

Strong analytical, problem-solving, collaboration, and communication skills.

Must be a US Citizenship or Green card holder.

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