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AI Foundational Model Engineer

Technogen, Inc.Jersey City, NJ🇺🇸United StatesPosted 24 Jul 2026

Why This Role Stands Out

As an AI Foundational Model Engineer at Technogen, Inc., you will design and deploy cutting-edge enterprise AI systems, gaining invaluable experience in LLMs and agentic AI. This role is perfect for skilled engineers eager to shape the future of AI within a leading IT services provider known for its diverse project portfolio and commitment to innovation. Apply today to contribute to impactful AI solutions and elevate your career.

Quick Overview

Work Type
On Site
Level
Mid Senior

Job Description

TECHNOGEN, Inc. is a Proven Leader in providing full IT Services, Software Development and Solutions for 15 years.

TECHNOGEN is a Small & Woman Owned Minority Business with GSA Advantage Certification. We have offices in VA; MD & Offshore development centers in India. We have successfully executed 100+ projects for clients ranging from small business and non-profits to Fortune 50 companies and federal, state and local agencies.


Description:

This role requires working onsite 4 days per week, and a F2F interview at the client's Jersey City location is mandatory.
ss are eligible

AI Foundation Model Engineer

LLM / Agentic AI / Full-Stack AI Engineering

Role purpose

Design, build, deploy, and optimize enterprise-grade AI systems powered by foundation models, LLMs, retrieval-augmented generation, and agentic workflows. The role converts AI concepts into secure, scalable, observable, and supportable production systems on the enterprise AI-ready platform (AIRP), which is currently AWS-hosted while following a cloud-agnostic architecture blueprint.

Client-specific emphasis

  • Hands-on AWS AI and cloud engineering is a major asset because AIRP currently runs on AWS.
  • Candidates should be comfortable working with Terraform/IaC and CI/CD teams to move AI services and infrastructure through controlled deployment pipelines.
  • Experience should map to business AI use cases such as KYC, credit underwriting, pitch book generation, Banker 360, Customer 360, deal library intelligence, financial crime quality, and sanctions screening.

Primary ownership

  • Production LLM applications, RAG pipelines, AI services, and model-serving integrations for AIRP.
  • End-to-end LLMOps/MLOps lifecycle from experimentation to deployment, monitoring, evaluation, rollback, and continuous improvement.
  • Reusable AI service components, APIs, prompts, retrieval logic, and observability patterns that can be federated across multiple business use cases.

Key responsibilities

  • Design and implement LLM-powered applications such as knowledge assistants, document intelligence solutions, workflow agents, summarization tools, and decision-support systems.
  • Build RAG pipelines using embeddings, chunking strategies, vector databases, semantic retrieval, reranking, response grounding, and citation patterns.
  • Integrate AI capabilities with AWS-hosted platform components, including model APIs, model gateways, data services, container platforms, and enterprise authentication patterns.
  • Collaborate with cloud engineering teams on Terraform modules, IaC templates, environment promotion, CI/CD pipelines, release controls, and rollback procedures.
  • Adapt and optimize models using LoRA, PEFT, instruction tuning, distillation, transfer learning, quantization, and domain adaptation techniques where appropriate.
  • Optimize inference workloads for latency, throughput, token efficiency, cost, reliability, and user experience.
  • Implement model and application observability, including prompt logs, retrieval quality, hallucination indicators, drift signals, feedback loops, cost telemetry, and service health.
  • Embed security, privacy, Responsible AI, and model risk controls into AI application design and delivery.
  • Create production documentation, runbooks, release notes, test evidence, and audit-ready implementation records.

Must-have candidate profile

  • 7+ years in AI/ML engineering, platform engineering, software engineering, or applied machine learning.
  • Hands-on experience with LLMs, transformers, embeddings, RAG, semantic search, and GenAI application patterns.
  • Strong Python engineering skills with PyTorch, TensorFlow, Hugging Face, LangChain, LlamaIndex, Semantic Kernel, or equivalent frameworks.
  • Experience deploying production AI services using APIs, containers, Kubernetes, CI/CD, cloud-native services, and monitoring platforms.
  • Practical exposure to AWS AI/cloud services or comparable cloud-native AI deployment experience, with ability to ramp quickly on AWS-hosted AIRP patterns.
  • Working knowledge of Terraform/IaC, DevOps pipelines, release management, model evaluation, inference optimization, and secure data handling.

Preferred experience

  • Banking, risk, compliance, financial crime, operations, or enterprise technology background.
  • Experience with AWS Bedrock, SageMaker, OpenSearch, Kendra, Lambda, EKS/ECS, Azure OpenAI, Vertex AI, Databricks, vLLM, Triton, MLflow, Kubeflow, or model gateways.
  • Exposure to cloud-agnostic application patterns, reusable IaC modules, model risk, AI governance, audit controls, AI cost governance, and private or open-source LLM deployments.
Enable Skills-Based Hiring No
ICIMS RR ID #

Additional Details

  • Skill Category : Regular
  • ICIMS RR ID # : NA
  • Client Name : MUFG Union Bank
  • Engagement Type : T&M Non Competitive
  • Vertical : BFS
  • Must-Have Primary Skill : Data and Intelligence-Analytics-Artificial Intelligence
  • Primary Skill: Yrs Experience : Master (8+ Years Experience)
  • RC- Domain : Data & Analytics
  • RC- Subdomain : 24 - Big Data, Data Science & Analytics (Apache Hadoop HDFS, Base/Hive/Pig/Mahout/Flume/Scoop/MapReduce/Yarn, Cloudera HD, NoSQL, R, Spark/Shark/Milb, MATLAB)
Regards,
Surekha.V

Skills

MATLAB
AWS
MLOps
MLflow
Machine Learning
Apache
Azure
Compliance
Continuous Improvement
Databricks
Hadoop
Hive
Hugging Face
KYC
Kubernetes
LLM
Pig
PyTorch
Python
SAP
TensorFlow
Terraform
Underwriting
iCIMS

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