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AWS Cloud Engineer

Job in Cincinnati, Hamilton County, Ohio, 45202, USA
Listing for: E-Solutions
Full Time position
Listed on 2026-07-01
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer, AWS
Job Description & How to Apply Below

AWS Cloud Engineer

Location:

Cincinnati, Ohio Onsite (5 days) Duration:
Full time

AWS Cloud Engineer V "Demonstrated contributions to open-source AI/ML/Cloud projects, Demonstrated proficiency in Python and Golang coding languages, Experience implementing RAG architectures and using frameworks and ML tooling like:
Transformers, PyTorch, Tensor Flow, and Lang Chain, LLM, Ph.D. in AI/ML/Data Science" REQUIRED KNOWLEDGE, SKILLS, AND ABILITIES: 10+ years of proven software engineering experience with a strong focus on Python and GoLang and/or Node.js. Demonstrated contributions to open-source AI/ML/Cloud projects, with either merged pull requests or public repos showing real usage (forks, stars, or clones). Direct, hands-on development of RAG, semantic search, or LLM-augmented applications, using frameworks and ML tooling like Transformers, PyTorch, Tensor Flow, and Lang Chain—not just experimentation in a notebook.

Ph.D. in AI/ML/Data Science and/or named inventor on pending or granted patents in machine learning or artificial intelligence. Deep expertise with AWS services, especially Bedrock, Sage Maker, ECS, and Lambda. Proven experience fine-tuning large language models, building datasets, and deploying ML models to production. Demonstrated success delivering production-ready software with release pipeline integration.

NICE-TO-HAVES:
Policy as Code development (i.e., Terraform Sentinel) to manage and automate cloud policies, ensuring compliance Experience optimizing cost-performance in AI systems (Fin Ops mindset). Awareness of data privacy and compliance best practices (e.g., PII handling, secure model deployment). Demonstrated experience with AWS organizations and policy guardrails (SCP, AWS Config).

DUTIES AND RESPONSIBILITIES:

Design, develop, and maintain modular AI services on AWS using Lambda, Sage Maker, Bedrock, S3, and related components—built for scale, governance, and cost-efficiency. Lead the end-to-end development of RAG pipelines that connect internal datasets (e.g., logs, S3 docs, structured records) to inference endpoints using vector embeddings. Design and fine-tune LLM-based applications, including Retrieval-Augmented Generation (RAG) using Lang Chain and other frameworks.

Tune retrieval performance using semantic search techniques, proper metadata handling, and prompt injection patterns. Collaborate with internal stakeholders to understand business goals and translate them into secure, scalable AI systems.

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