Senior Applied AI/ML Engineer - Build & Deploy AI Solutions

Atlas Technologies, Inc.

Northern (KY)

Hybrid

USD 140,000 - 190,000

Full time

7 hours ago
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Job summary

Atlas Technologies, Inc. is looking for a Senior Applied AI/ML Engineer to design, build, and operationalize advanced AI/ML solutions across mission, operational, and business domains.

You will shape architectures, select models, run experiments, and deliver end-to-end capabilities with measurable impact. You will collaborate with product and domain teams to deploy scalable AI systems, ensure responsible AI practices, and mentor junior engineers while translating complex concepts into usable

Qualifications

  • Bachelor’s or Master’s degree in Computer Science, ML, Data Science, Engineering, or related field
  • 3+ years of experience in applied AI/ML engineering, including production deployments
  • Experience with LLMs, fine-tuning, retrieval-augmented generation (RAG), prompt engineering, or custom model training
  • Experience with vector databases, high-dimensional embeddings, and semantic search
  • Experience applying LoRA adapters for efficient fine-tuning of foundation models, including training, evaluation, and integration into production pipelines
  • Strong proficiency in Python and ML libraries such as TensorFlow, PyTorch, scikit-learn, Hugging Face, LangChain, or similar
  • Experience building and operating AI/ML systems in air-gapped environments
  • Deep understanding of model development: supervised/unsupervised learning, neural networks, transformers, time-series, embeddings
  • Familiarity with modern AI/ML ops tooling: MLflow, SageMaker, Vertex AI, Databricks, or equivalent
  • Strong understanding of API design, microservices, containers, and CI/CD for ML
  • Ability to connect technical solutions to business value and communicate effectively with executives and non-technical stakeholders

Responsibilities

  • Design, build, and deploy scalable AI/ML tools for generative AI use cases
  • Develop end-to-end ML pipelines, including LLM tool integration, data ingestion, feature engineering, model training, evaluation, and monitoring
  • Implement production-grade inference systems and integrate ML models into applications, APIs, and microservices
  • Lead experimentation, define hypotheses, run evaluations, assess model performance, and identify improvement strategies
  • Work closely with engineering teams to build robust, secure, and maintainable AI-enabled architectures
  • Provide periodic instruction and prompt fine‑tuning to resolve newly discovered hallucination vectors, user‑reported biases, or changes in operational terminology
  • Partner with domain SMEs to translate real-world constraints into effective features, labels, and model requirements
  • Evaluate emerging AI technologies, frameworks, and foundation models and recommend their use in mission-relevant applications
  • Mentor junior engineers and contribute to internal standards, coding practices, and reusable components
  • Ensure responsible AI practices, bias evaluation, data governance, model explainability, and ethical use of automated systems
  • Prepare demos, prototypes, and proof-of-concept integrations that clearly illustrate feasibility and value

Skills

Python
ML libraries
TensorFlow
PyTorch
scikit-learn
Hugging Face
LangChain
LLMs
RAG
prompt engineering
LoRA adapters
vector databases
semantic search
MLOps
APIs
microservices
CI/CD for ML
production deployments
air-gapped environments

Education

Bachelor’s or Master’s degree in Computer Science/ML/Data Science/Engineering

Tools

TensorFlow
PyTorch
scikit-learn
Hugging Face
LangChain
MLflow
SageMaker
Vertex AI
Databricks

Job description

Atlas Technologies, Inc. is looking for a Senior Applied AI/ML Engineer to design, build, and operationalize advanced AI/ML solutions across mission, operational, and business domains.

You will shape architectures, select models, run experiments, and deliver end-to-end capabilities with measurable impact. You will collaborate with product and domain teams to deploy scalable AI systems, ensure responsible AI practices, and mentor junior engineers while translating complex concepts into usable

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