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AI/ML Engineer

Waltech, Inc.United States🇺🇸United StatesPosted Oct 5, 2026

Quick Overview

Seniority
Mid Senior
Work mode
Hybrid
Location
United States
Posted
Yesterday
DockerSQLSQL ServerAWSMLOpsMachine LearningNLPAirflowAzureDeep LearningGenerative AIGitGitHub ActionsGoogle CloudLLMPostgreSQLPyTorchPythonTensorFlow

Job Description

We are into staff Augg services since last 3 decades. I am reaching out to see if you are looking for New Opportunity.At the same time , for my enterprise client , they need genuine candidate with absolute zero manipulation of candidate's document. Even if you are having 2 years of latest exp in AI stacks is absolute fine , lets respect each other time and share original documents

Required Skills
•Machine Learning & AI foundations
• Strong grounding in ML fundamentals — supervised/unsupervised learning, evaluation methodology, and model selection.
• Practical experience with deep learning frameworks (PyTorch and/or TensorFlow).
• Solid understanding of NLP and transformer architectures.

Generative AI, LLMs & Agentic Systems
• Hands on experience building with LLMs (OpenAI/Azure OpenAI, Anthropic Claude, or comparable).
• Prompt engineering, structured outputs, and function/tool calling.
• Experience with agentic frameworks and orchestration (e.g., LangChain, LangGraph, LlamaIndex, or equivalent) and multi agent design patterns.
• RAG system design: vector databases, embeddings, retrieval and re ranking strategies, and grounding/citation techniques.
• Familiarity with the Model Context Protocol (MCP) or similar tool/integration standards.

Data Engineering
• Strong SQL and experience with relational databases (SQL Server, PostgreSQL, or similar).
• Building and maintaining data/ML pipelines and workflow orchestration (Airflow or equivalent).
• Comfort working with unstructured and semi structured data at scale.

MLOps & Observability
• Model/LLM evaluation frameworks and offline/online testing.
• Observability tooling for AI systems (e.g., Arize, Langfuse, or comparable) — monitoring quality, cost, drift, and token usage.
• Experiment tracking and reproducibility practices.
Software Engineering & Cloud
• Expert level Python and sound software engineering habits (testing, code review, version control with Git/GitHub).
• Containerization with Docker and CI/CD (GitHub Actions or equivalent).
• Cloud platform experience (Azure preferred; AWS/Google Cloud Platform acceptable), including deploying and scaling services.

 

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