Applied AI Engineer-Location-Hybrid @ NYC -Need Locals

Hybrid in New York, NY, US • Posted 1 day ago • Updated 1 day ago
Contract W2
12 Months
Hybrid
Depends on Experience
Fitment

Dice Job Match Score™

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Job Details

Skills

  • Python
  • Java
  • Generative AI
  • GenAI
  • Large Language Models (LLMs)
  • LLM
  • Applied AI
  • AI Engineering
  • AI Platform Engineering
  • AI Application Development
  • LangChain
  • LangGraph
  • Retrieval-Augmented Generation (RAG)
  • Agentic AI
  • AI Agents
  • Tool Calling
  • Function Calling
  • Prompt Engineering
  • Prompt Management
  • Prompt Versioning
  • LLMOps
  • AI Workflow Orchestration
  • AI Data Ingestion Pipelines
  • Document AI
  • Document Processing
  • Intelligent Document Processing (IDP)
  • Data Extraction
  • OCR
  • Human-in-the-Loop
  • Structured Outputs
  • Vector Databases
  • Pinecone
  • Weaviate
  • ChromaDB
  • FAISS
  • ColBERT
  • Multi-Vector Retrieval
  • Semantic Search
  • Embeddings
  • Chunking Strategy
  • Metadata Filtering
  • Re-Ranking
  • Multi-Stage Retrieval Pipelines
  • Retrieval Evaluation
  • MRR
  • NDCG
  • Recall
  • Precision
  • AI Model Evaluation
  • Regression Testing
  • Observability
  • Monitoring
  • Production Support
  • Production Deployment
  • Model Governance
  • AI Governance
  • PII Handling
  • Enterprise AI
  • OpenAI
  • Azure OpenAI
  • Anthropic Claude
  • Hugging Face
  • FastAPI
  • Spring Boot
  • REST APIs
  • Microservices
  • Docker
  • Kubernetes
  • CI/CD
  • AWS
  • Azure
  • GCP
  • React
  • Angular
  • Git
  • SQL

Summary

Title - Applied AI Engineer

Location-Hybrid @ NYC -Need Locals

Duration Contract

Interview Process Possible In person for Client Round

Skills Needed: +5 front and backend GenAI development and engineering with Python or Java, +2 years application of GenAI solutions in an enterprise business enviroment, RAG, deployment and production support, LLMops, AI data ingestions pipelines, etc.

Glider Assessment (Y/N): Python Glider

Overview

Our Fixed Income Institutional Lending Technology team is building an enterprise-grade GenAI workflow platform enabling document data extraction, embedded productivity assistants, and automated business workflows across Lending business lines.

This is not a research or demo role. We are seeking senior, hands-on full-stack engineers who have designed, built, and operated GenAI systems in production and who treat failure modes, evaluation, and governance as first-class concerns. The role is a hands-on technical expert seat with a clear path to becoming a platform owner responsible for shared GenAI standards across Lending.

What You'll Do

  • Design and evolve reusable GenAI workflows used across Lending business lines.
  • Build an enterprise-grade AI document ingestion and data extraction capability, including traceability, confidence scoring, and human-in-the-loop review.
  • Develop AI-powered assistants embedded in Lending systems using agentic workflows.
  • Deliver automated content and deck generation workflows for reporting and approvals.
  • Advise on GenAI architecture: model selection, orchestration patterns, and evaluation strategy.
  • Establish LLMOps practices covering extraction accuracy, assistant reliability, prompt management, and audit monitoring.
  • Design and implement controls for entitlements and PII handling, including safe use of open-source models in a regulated environment.

What You'll Bring

  • 6-7+ years of front-to-back engineering experience in Python or Java, with a focus on AI/ML platforms and workflows.
  • 3+ years of dedicated, practical GenAI experience in an enterprise business environment, including designing and operating orchestration frameworks in production beyond vendor examples (e.g., custom LangChain-based systems).
  • Proven experience building and operating production-grade GenAI/LLM platforms applying RAG, tool/function calling, agentic workflows, and validated structured outputs.
  • Strong LLMOps expertise: evaluation harnesses, prompt and version management, regression testing, observability, and reliability measurement in production.
  • Hands-on experience building AI-first data ingestion pipelines with measurable quality, accuracy, and reliability.
  • Advanced retrieval depth: multi-vector and late-interaction approaches (e.g., ColBERT), chunking strategy, multi-stage retrieval pipelines, metadata filtering, and re-ranking plus a working command of evaluation metrics (recall vs. precision, latency vs. quality, MRR, NDCG) and how they shape RAG design.
  • Experience operating GenAI systems through real production failures model regressions, retrieval degradation, prompt drift, data quality issues and designing mitigations.

Nice to Have

  • Fixed Income or Institutional Lending domain experience.
  • Experience in regulated environments with strong audit and control requirements.
  • Familiarity with enterprise security, data governance, and entitlement models.
  • Experience building reusable internal platforms or shared developer tooling.
  • Frontend experience (Angular or React).

Regards,

Sai Srikar

Email:

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: 91081414
  • Position Id: 9033582
  • Posted 1 day ago
Contact the job poster
Sai Sekhar

Sai Sekhar

Recruiter @ Cyber Sphere LLC
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