A
Not Specified Permanent

New York City, New York · USA job

Director, AI & Agentic Engineering

Artefact

New York City, New York

Job description

Overview

In this role, you lead a team of AI & ML engineers to design and deliver production-grade AI systems, from traditional models to LLM-driven applications. You shape architecture, drive context and harness engineering, and guide fine-tuning pipelines while collaborating with clients and senior leadership. You influence AI strategy and platform roadmap, ensuring scalable, cost-efficient solutions. This is a high-impact role within Artefact's US expansion, blending technical leadership with business-facing work.

Compensation / Benefits
  • competitive benefits
  • base compensation starting at $200,000 (NYC)
  • hybrid/work location flexibility
  • opportunity to contribute to US expansion
  • working with world-class clients
Responsibilities
  • Lead design, build, and optimization of production AI systems (classical ML, LLM apps, agentic systems)
  • Define and standardize context engineering practices (prompt/system design, RAG, vector stores)
  • Direct development of robust agent harnesses (orchestration, evaluation, guardrails, observability)
  • Oversee fine-tuning and model adaptation pipelines (data curation, supervised fine-tuning, deployment)
  • Architect and deploy solutions on Google Gemini Enterprise and Vertex AI; leverage Microsoft AI Foundry and AWS Bedrock when needed
  • Manage and mentor a team of AI & ML engineers; set technical standards and promote knowledge sharing
  • Support pre-sales activities (scoping, demos, proofs of concept, solution scoping with clients)
  • Oversee ML modeling workflows (predictive, forecasting, recommendation, deep learning)
  • Contribute to AI strategy and GenAI architecture direction and platform roadmap
Key requirements
  • 8+ years in Data Science/ML with hands-on production deployments
  • 2-3 years working on LLM architecture, agentic design, and harness & context engineering
  • Expertise in generative AI/LLM engineering (context, agents, RAG, fine-tuning) and classical ML modeling
  • Master's degree in a related field
  • Proficiency with ML libraries (scikit-learn, XGBoost) and agentic SDKs (LangGraph/LangChain, Google ADK, Claude Agent SDK)
  • Experience building end-to-end fine-tuning pipelines (data curation, supervised fine-tuning, evaluation, deployment)
  • Strong grasp of ML lifecycle, MLOps, agents, tools, guardrails, observability
  • Deep experience with Google Gemini Enterprise / Vertex AI; basic knowledge of Microsoft AI Foundry and AWS Bedrock
  • Proven leadership of engineering teams and involvement in pre-sales activities
  • Excellent communication across teams and stakeholders
  • Strong business acumen with a client-focused mindset
  • Adaptability and startup mentality
  • Google Gemini Enterprise
  • Vertex AI
  • LangChain/LangGraph

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