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Fullstack AI Architect

Ztek ConsultingNew York, NY🇺🇸United StatesPosted 15 Sept 2026

Why This Role Stands Out

As a Fullstack AI Architect at Ztek Consulting, you'll have the opportunity to shape innovative AI solutions and define the future of their platform, with a competitive contract rate and the flexibility of a hybrid work model. This role is perfect for a seasoned engineer eager to lead technical direction, build complex AI systems, and mentor a team, offering significant impact and professional growth. Embrace this chance to make your mark and advance your career by applying today.

Quick Overview

Seniority
Mid Senior
Work mode
Hybrid
Location
New York, NY, United States
Posted
Yesterday
MLflowBigQueryGoogle CloudJavaKubernetesLLMPythonRESTTerraformTypeScript

Job Description

Job Title: Fullstack AI Architect

Location: New York City, NY

Type of hire: Contract

Job Description :

The most senior engineer on the team and the technical anchor for the platform. You design the reference architecture and personally build the hardest pieces the lifecycle registries, the AI control-plane services that plug into the enterprise gateway, and the harness/memory services setting the patterns the rest of the pod extends.

What You Will Do

  • Own the paved road the reference architecture and the reusable registration pattern behind every asset (registration schema, semantic metadata, I/O contract, execution binding, governance constraints) so the agent, model, tool, workflow and skill registries all share one shape.
  • Personally build the hardest pieces the lifecycle registries; the AI control-plane services that plug into the enterprise gateway (registries, PII/PHI and prompt-injection scanning as a gateway policy, token-aware metering and multi-vendor cost attribution, AI trace/observability, and the multi-provider model-abstraction layer behind its fail-over); and the harness/memory & skills services.
  • Build the agent-building paved road the scaffolds, patterns and sub-agent topologies the team uses to stand up new agents fast, including the end-to-end builder agent (architect provision implement test sub-agent deploy post-process log).
  • Deliver platform features as agents where it fits (e.g. a lifecycle-management agent, a skills-planning agent) so the platform builds and operates itself, not just exposes CRUD APIs.
  • Enforce portability in code containerize everything; standardize lineage on MLflow + metadata, telemetry on OpenTelemetry, table formats on Delta UniForm / Iceberg, and open-weight serving on vLLM/Ray/DeepSpeed.
  • Set the engineering bar testing, CI/CD, IaC and security-by-default standards; review the team's hardest designs and pull requests; mentor the senior engineers.
  • Build with AI and build agents end to end like everyone on the team.

What We're Looking For Required Qualifications

  • Principal-level full-stack you build production services end to end (backend, APIs, and enough frontend to ship the registry and dev UIs) and you own systems in production.
  • Distributed systems & platform engineering Kubernetes, containers, IaC (Terraform), CI/CD, secrets/RBAC, and multi-tenant service design.
  • Cloud depth with a portable mindset strong on Google Cloud Platform (GKE, Vertex AI, IAM, VPC Service Controls, BigQuery), but standards-first by instinct.
  • Hands-on GenAI / agentic engineering LLM and agent runtimes, multi-agent and sub-agent orchestration, A2A and MCP/tool integration, retrieval/RAG, memory systems, and end-to-end builder agents.
  • Security & governance by design identity-aware access, PII/PHI handling, runtime guardrails, gateway/policy-as-code, and audit/observability.
  • AI-assisted engineering fluent and effective with AI coding tools (Cursor, Claude Code, Copilot, Windsurf or equivalent), and able to define the patterns and review discipline the team uses with them.
  • Strong software engineering background strong Python (and typically one of Go / Java / TypeScript).

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