Distinguished AI Engineer
Listed on 2026-08-11
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IT/Tech
AI Engineer (Applied/Software), Cloud Computing: Infrastructure & Operations
We are looking to Hire a Talented Professional for the below Job opportunity with one of our clients,
Location:Jersey City, NJ (4 Days On-site)
Duration:
Long TermF2F interview at the client’s Jersey City location is mandatory
Job Description:
Enterprise AI Architecture / LLM Platforms / Advanced AI Systems
Level
Distinguished / Principal Technical Leader
Target / alternate titles
Core keywords
enterprise AI architecture, AIRP, LLM platform, AI gateway, model evaluation, observability, RAG, agentic AI, governance, AWS, cloud-agnostic architecture, Terraform modules, IaC, Dev Ops pipelines, Kubernetes, GPU
Set the architecture, engineering standards, platform strategy, and technical governance for enterprise AI and GenAI capabilities. This role guides senior engineering teams and ensures AIRP is scalable, reusable, observable, cost-efficient, secure, and compliant, while remaining AWS-first today and cloud-agnostic by design.
Client-specific emphasis- Own the cloud-agnostic AI blueprint while leveraging AWS as the current implementation platform.
- Define reusable Terraform/IaC and Dev Ops pipeline patterns that can be federated across multiple AIRP use cases.
- Ensure architecture supports AI for business, AI for engineering, and responsible citizen development without fragmenting controls.
- Target-state enterprise AI architecture, AIRP reference patterns, reusable platform capabilities, and guardrails.
- LLMOps, AI gateways, model-serving strategy, evaluation platforms, observability, governance, and operating standards.
- Technical assurance for high-risk or high-impact AI initiatives across banking use cases.
- Define target-state architecture for AIRP, LLM platforms, model hubs, AI gateways, RAG services, agent frameworks, orchestration layers, and model-serving infrastructure.
- Establish enterprise standards for AI SDLC, LLMOps, MLOps, evaluation, release management, operational resilience, and production support.
- Create AWS implementation patterns that align with a cloud-agnostic blueprint and minimize unnecessary vendor lock-in.
- Define standards for Terraform modules, reusable IaC templates, environment strategy, pipeline promotion, approvals, observability, secrets, rollback, and operational controls.
- Guide architecture for secure, scalable, and cost-efficient inference across cloud, hybrid, private, and containerized environments.
- Define guardrail patterns for hallucination mitigation, bias monitoring, harmful-content controls, prompt injection defense, data leakage prevention, and human oversight.
- Lead design reviews for critical AI systems and provide technical assurance to architecture, risk, security, and governance forums.
- Partner with cybersecurity, risk, compliance, legal, audit, product, business, and citizen-development enablement teams.
- Assess emerging AI technologies and recommend adoption based on business value, maturity, risk, cost, portability, and regulatory fit.
- 10+ years in AI/ML systems, distributed systems, enterprise architecture, or platform engineering.
- Deep experience with LLMs, RAG, embeddings, model serving, AI orchestration, evaluation frameworks, and AI infrastructure.
- Proven track record defining architecture and technical standards across multiple engineering teams.
- Strong AWS cloud architecture experience or comparable hyperscaler depth, with clear ability to design cloud-agnostic AI platform patterns.
- Experience shaping Terraform/IaC standards, Dev Ops pipelines, secure deployment patterns, observability, resiliency, and platform operating models.
- Ability to influence senior stakeholders and operate across business, technology, risk, compliance, security, data, and architecture forums.
- Global bank, fintech, financial-services, or regulated-enterprise platform experience.
- Experience with enterprise AI platforms, private LLM deployments, internal model hubs, AI gateways, multi-cloud AI strategy, or platform blueprint ownership.
- Familiarity with Responsible AI, model risk management, audit expectations, technology risk controls, and citizen development governance.
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