Gen AI Leads/Architect || Location: NYC, NY Onsite

New York, NY, US • Posted 7 hours ago • Updated 4 hours ago
Contract Corp To Corp
Contract W2
Contract Independent
On-site
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Job Details

Skills

  • Generative Artificial Intelligence (AI)
  • Workflow
  • Stakeholder Engagement
  • POC
  • Roadmaps
  • Mentorship
  • LangChain
  • Python
  • TypeScript
  • Backend Development
  • Cloud Computing
  • Microsoft Azure
  • Amazon Web Services
  • Google Cloud
  • Google Cloud Platform
  • Managed Services
  • System Integration
  • Apache Kafka
  • Enterprise Integration
  • Testing
  • Continuous Integration
  • Continuous Delivery
  • DevOps
  • Git
  • Communication
  • Technical Direction
  • Orchestration
  • Routing
  • Articulate
  • Command-line Interface
  • LangSmith
  • Debugging
  • Microsoft Certified Professional
  • Quality Assurance
  • Evaluation
  • IT Service Management
  • Management
  • API
  • Jupyter
  • Artificial Intelligence

Summary

Title: Gen AI Leads/Architect
Location: NYC, NY Onsite

Job Description :

Key Responsibilities

Delivery & Architecture

  • Own end-to-end delivery of AI-native programs - from architecture through production deployment
  • Design and build multi-agent orchestration systems using LangChain, LangGraph, CrewAI, or equivalent
  • Integrate agent systems with enterprise surfaces: APIs, ERPs, CRMs, data platforms - not toy datasets
  • Define agent topology: tool routing, memory strategy, state machines, fallback handling

Agentic Coding & Development

  • Run agentic coding workflows using Claude Code, Cursor, OpenAI Codex, or equivalent CLI tools
  • Lead projects where AI writes significant portions of the codebase - and you guide, review, and ship it
  • Work with CLAUDE.md, shared context frameworks, and multi-session agent setups for team use
  • Debug non-deterministic agent outputs systematically - not by gut feel

Client & Stakeholder Engagement

  • Translate business problems into agent architectures for global CXO-level stakeholders
  • Run discovery workshops, solution reviews, and delivery cadences with client teams
  • Prepare and present technical proposals, POC plans, and roadmaps - own the story end-to-end

Team & Practice

  • Mentor junior AI engineers; raise AI engineering quality across the delivery team
  • Stay current: evaluate new models, frameworks, and tooling before the hype catches up
  • Contribute to internal knowledge bases, reusable frameworks, and accelerators

Skills

Agent Orchestration

LangChain, LangGraph, CrewAI - not just conceptual

Agentic Coding Tools

Claude Code CLI, Cursor, OpenAI Codex, Copilot

RAG & Vector Stores

Chroma, Weaviate, Pinecone - knows where RAG breaks

LLM APIs & SDKs

Anthropic, OpenAI, Gemini - prompt design, tool use

Python / TypeScript

Primary languages for agent + backend development

LangSmith / Observability

Tracing, evaluation, debugging agent runs

Cloud Platforms

Azure, AWS, Google Cloud Platform (at least one) - deployment, infra, managed services

API & System Integration

REST, gRPC, Kafka - enterprise integration patterns

MCP / Shared Context

Model Context Protocol, CLAUDE.md, Beads

Agent Evaluation

Testing non-deterministic outputs, guardrails, evals

CI/CD & DevOps

Git, containers, pipelines - agents need to ship

Client Communication

Can present architecture to a CXO without jargon

What You Must Have Actually Done

Not just what you know. What you have shipped.

  • Deployed 2 3 agent-based systems in production - stateful, multi-step, real users
  • Used LangGraph for multi-agent orchestration with memory, tool routing, and state management
  • Built projects where AI (Claude Code, Codex, Cursor) wrote significant portions of the code
  • Implemented RAG pipelines end-to-end - chunking, embedding, retrieval, re-ranking, evaluation
  • Integrated agents with real enterprise APIs - not just OpenAI playground or sample data
  • Debugged a production agent failure - and fixed it without blaming the model
  • Can articulate when NOT to use agents - that is how we know you have built things

Bonus - Real Differentiators

  • Experience with Claude Code CLI in team environments (CLAUDE.md, shared context, multi-session flows)
  • Familiarity with LangSmith for agent tracing, evaluation pipelines, and debugging at scale
  • Has shipped something using MCP (Model Context Protocol) or similar shared-context tooling
  • QA/testing mindset for agents - systematic evaluation of non-deterministic outputs
  • Background in IT services or consulting - managing client expectations while building
  • Experience with SLMs, fine-tuning, or on-device/edge agent deployment

What We Are Not Looking For

  • Someone who lists LLMs on a resume but has only called the API in a Jupyter notebook
  • AI enthusiasts whose hands-on experience is less than a year old
  • People who explain everything in terms of frameworks they have never deployed
  • Consultants who can only narrate what others have built

Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 90999956
  • Position Id: 2026-42787/15633
  • Posted 7 hours ago
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