Agentic AI Developer

AgreeYa

$100K — $120K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's or master's degree in computer science, AI, or Software Engineering, or equivalent experience.
  • 1-2+ years of focus on LLM/AI applications.
  • Expert-level proficiency in Python, with TypeScript/JavaScript as a plus.
  • Experience with agent frameworks like LangGraph, CrewAI, Microsoft AutoGen, LlamaIndex, or Semantic Kernel.
  • Proven ability in building RESTful APIs, OpenAPI specifications, and function calling architectures.
  • Hands-on experience with vector search engines like Pinecone or Qdrant.

Responsibilities

  • Architect and implement autonomous AI agents using modern frameworks.
  • Design reasoning architectures, including ReAct loops and multi-agent structures.
  • Construct robust tool-use pipelines for seamless external API interactions.
  • Integrate Long-Term Memory systems and implement context memory strategies.
  • Build fallback mechanisms and human-in-the-loop checkpoints.
  • Establish evaluation pipelines for benchmarking agent performance.
  • Debug non-deterministic failures and improve execution paths.

Benefits

  • Opportunity to work at the cutting edge of AI technology.
  • Collaborative environment with cross-functional teams.
  • Hands-on experience with state-of-the-art frameworks and tools.
  • Possibility to influence the development of scalable enterprise applications.
Full Job Description
Job Title :: gentic AI Developer
Job Location :: Irving, TX / Alpharetta, GA - Onsite
Description:
We are seeking a skilled and forward-thinking Agentic AI Developer to design, build, and deploy autonomous AI agents and multi-agent systems.
In this role, you will go beyond traditional static prompt engineering to create resilient, decision-making agentic workflows capable of planning, tool use, memory management, and autonomous execution to solve complex, multi-step real-world tasks.

You will collaborate closely with product managers, data engineers, and domain experts to take cutting-edge LLM agent architectures from research concepts into scalable, production-ready enterprise applications.

Key Responsibilities
  • Agent Design & Orchestration Architect and implement autonomous AI agents using modern frameworks (e.g., LangGraph, CrewAI, AutoGen, LlamaIndex, or custom orchestration loops).
  • Design agent reasoning architectures, including ReAct loops, Plan-and-Solve patterns, Reflection/Self-Correction mechanisms, and hierarchical multi-agent structures.
  • Construct robust tool-use pipelines enabling agents to seamlessly call external APIs, query databases, execute code, and interact with enterprise software.
  • System Architecture & Integration Integrate Long-Term Memory systems (vector databases, semantic search, key-value state stores) and Short-Term/Context Memory management strategies. Implement structured input/output parsing (Pydantic, JSON Schema) to guarantee reliable communication between model calls and execution environments.
  • Build fallback mechanisms, human-in-the-loop (HITL) checkpoints, and deterministic guards around non-deterministic AI decisions.
  • Monitoring, Evaluation & Optimization Establish evaluation pipelines (using tools like Ragas, TruLens, or LangSmith) to benchmark agent accuracy, execution speed, trajectory quality, and tool failure rates. Monitor runtime performance, API usage costs, latency, and context-window token optimization across complex multi-step trajectories.
  • Debug non-deterministic failures, looping behaviors, and hallucinations in multi-step agent execution paths.


Required Qualifications Education & Experience:

Bachelor's or master's degree in computer science, AI, Software Engineering, or equivalent practical experience with 1-2+ years focused on LLM/AI applications.
Programming Skills: Expert-level proficiency in Python (TypeScript/JavaScript experience is a plus).
Agent Frameworks: Demonstrated experience building with frameworks like LangGraph, CrewAI, Microsoft AutoGen, LlamaIndex Agents, or Semantic Kernel.
API & Tool Integration: Proven track record building RESTful APIs, OpenAPI specifications, function calling architectures, and model tool definitions.
Vector Databases & RAG: Hands-on experience with vector search engines (Pinecone, Qdrant, Milvus, Weaviate, or Chroma) and hybrid retriever architectures.
Software Engineering Fundamentals: Strong background in asynchronous programming, microservices, Docker/Kubernetes, CI/CD, and unit/integration testing for non-deterministic AI systems

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