AI/ML Software Engineer

DFUSE TECHNOLOGIES · Ai, OH, US

Spotted 2h ago
Job description

About this role

Employer-provided description, formatted for easier reading.

AI/ML Software Engineer

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Role Overview

We are seeking a talented and driven AI/ML Software Engineer to bridge the gap between advanced machine learning research and high-performance software production systems. In this role, you will design, build, test, and deploy scalable AI-driven features and robust machine learning architectures, working closely with product managers, data scientists, and backend engineering teams.

Key Responsibilities

  • Model Integration & Development: Design, fine-tune, and evaluate machine learning models, integrating them seamlessly into production applications via robust APIs.
  • Data Pipeline Engineering: Build, optimize, and maintain efficient data pipelines for preprocessing, feature engineering, and continuous model training.
  • Production Deployment & MLOps: Containerize and deploy models using modern cloud infrastructure, ensuring low latency, high scalability, and uptime.
  • Monitoring & Performance Tuning: Track deployed models for performance drift, resource consumption, accuracy gaps, and inference cost efficiency.
  • Cross-Functional Collaboration: Partner with product and engineering stakeholders to scope AI use cases, translate business requirements into technical specs, and define success metrics.
  • Quality & Evaluation: Establish automated test suites and rigorous evaluation frameworks to measure model accuracy, robustness, and safety.

Minimum Qualifications

  • Education: Bachelor’s or Master’s degree in Computer Science, Artificial Intelligence, Machine Learning, Data Science, or a related technical field.
  • Experience: 2+ years of professional software engineering experience, including hands-on work building, shipping, and supporting machine learning models in production environments.
  • Programming Proficiency: Strong software engineering fundamentals with expert-level proficiency in Python (including standard scientific computing libraries like NumPy and Pandas).
  • ML Ecosystem: Working knowledge of major machine learning frameworks such as PyTorch, TensorFlow, or Scikit-Learn.
  • Software Core Concepts: Solid foundation in data structures, algorithms, system design, RESTful APIs, and Git version control workflows.
  • Data Management: Practical experience with SQL and relational or non-relational database management.

Preferred Qualifications

  • Advanced Degree: Master’s or Ph.D. degree specializing in Machine Learning, Natural Language Processing (NLP), or Computer Vision.
  • Cloud Platforms: Hands-on experience deploying and managing workloads on AWS, Microsoft Azure, or Google Cloud Platform (GCP).
  • Generative AI & LLMs: Experience working with Large Language Models, Retrieval-Augmented Generation (RAG) systems, vector databases, and modern AI application frameworks.
  • Infrastructure & Automation: Proven familiarity with Docker, Kubernetes, CI/CD pipeline automation, and container orchestration.
  • Observability: Exposure to model monitoring and evaluation tooling (e.g., MLflow, LangSmith, or Prometheus) to track production health and trace model outputs.
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