Role: AWS + AI-Native Developer

Location: Whippany, NJ

Job Description:

An AWS + AI-Native Developer (or AI-Native Engineer) experienced to build applications with Artificial Intelligence embedded using AWS Bedrock, into their core architecture, workflows, and delivery lifecycle from day one, rather than treating AI as a tacked-on feature. Focus mainly on model training, AI-native developers specialize in using AI to write code, leveraging LLMs (Large Language Models), and constructing agentic workflows to accelerate production.

Core Responsibilities

AWS - Hands on with core services (EC2, EKS, DynamoDB, Lambda, API Gateway, S3)

AWS Bedrock

Agentic & LLM System Development: Build autonomous or semi-autonomous agents, orchestrate agent planning loops, manage tool calling, and implement memory modules.

AI-Powered Coding: Use AI tools (e.g., Cursor, GitHub Copilot, Claude Code) to rapidly prototype and generate production-ready code.

RAG Pipeline Construction: Develop Retrieval-Augmented Generation (RAG) systems using vector databases and semantic search.

API/SDK Integration: Integrate LLMs (OpenAI, Anthropic) into applications using function calling, structured outputs, and workflow automation.

Production Deployment: Take AI prototypes from Proof of Concept (PoC) to deployment using cloud platforms (AWS, GCP, Azure, Vercel).

Required Technical Skills

Programming Languages: High proficiency in Python and TypeScript/JavaScript (React, Next.js, Node.js).

AI Frameworks & Libraries: Experience with LangChain, LangGraph, LlamaIndex, or Semantic Kernel.

Vector Databases: Familiarity with technologies such as Pinecone, Chroma, Milvus, or Vertex AI Vector Search.

Development Tools: Hands-on experience with AI coding tools such as Cursor, Claude Code, and GitHub Copilot.

Software Engineering Fundamentals: Strong understanding of Git, debugging, testing, API design, and clean code principles.

Preferred Qualifications

Experience building custom GPTs, Claude Projects, or Multi-agent orchestration.

Understanding of AI governance, security, and "human-in-the-loop" mechanisms.

Experience with DevOps and MLOps tools (MLFlow, Kubeflow).

Key Characteristics

AI-Centric Mindset: Solves problems by blending human judgment with machine intelligence, producing 3 10 more output.

Adaptability: Learns new AI tools faster than the industry can create them.

Product Focus: Focuses on building, optimizing, and deploying AI applications quickly rather than just researching models.

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AWS + AI-Native Developer

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