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Data Science & ML Ops Engineer

Job in Phoenix, Maricopa County, Arizona, 85003, USA
Listing for: Jobs via Dice
Full Time position
Listed on 2026-01-01
Job specializations:
  • IT/Tech
    AI Engineer, Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 80000 - 100000 USD Yearly USD 80000.00 100000.00 YEAR
Job Description & How to Apply Below

Data Science & ML Ops Engineer

Location:

Concord, CA (Primary) / Phoenix, AZ (Secondary)

Duration: 12‑month contract

Overview

Tachyon Predictive AI team is looking for a hybrid Data Science & ML Ops Engineer to drive the full lifecycle of machine learning solutions—from data exploration and model development to scalable deployment and monitoring. This role bridges the gap between data science model development and production‑grade ML Ops engineering.

Key Responsibilities
  • Develop predictive models using structured/unstructured data across 10+ business lines, driving fraud reduction, operational efficiency, and customer insights.
  • Leverage AutoML tools (e.g., Vertex AI AutoML, H2O Driverless AI) for low‑code/no‑code model development, documentation automation, and rapid deployment.
  • Develop and maintain ML pipelines using tools like MLflow, Kubeflow, or Vertex AI.
  • Automate model training, testing, deployment, and monitoring in cloud environments (e.g., Google Cloud Platform, AWS, Azure).
  • Implement CI/CD workflows for model lifecycle management, including versioning, monitoring, and retraining.
  • Monitor model performance using observability tools and ensure compliance with model governance frameworks (MRM, documentation, explainability).
  • Collaborate with engineering teams to provision containerized environments and support model scoring via low‑latency APIs.
Qualifications
  • Strong proficiency in Python, SQL, and ML libraries (e.g., scikit‑learn, XGBoost, Tensor Flow, PyTorch).
  • Experience with cloud platforms and containerization (Docker, Kubernetes).
  • Familiarity with data engineering tools (e.g., Airflow, Spark) and ML Ops frameworks.
  • Solid understanding of software engineering principles and Dev Ops practices.
  • Ability to communicate complex technical concepts to non‑technical stakeholders.
Contact

Chanakya Bhadrachalam
Sr. IT Recruiter
Email: [email]

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