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Machine Learning Engineer
Job in
Pleasanton, Alameda County, California, 94566, USA
Listed on 2025-12-01
Listing for:
Ampcus, Inc
Full Time
position Listed on 2025-12-01
Job specializations:
-
IT/Tech
Cloud Computing, AI Engineer
Job Description & How to Apply Below
Ampcus Inc. is a certified global provider of a broad range of Technology and Business consulting services. We are in search of a highly motivated candidate to join our talented team.
Job TitleMachine Learning Engineer
LocationPleasanton, CA.
Key Responsibilities- Design, build, and maintain end-to-end MLOps pipelines for data prep, training, validation, packaging, and deployment.
- Develop FastAPI microservices for model inference with clear API contracts, versioning, and documentation.
- Define and implement deployment strategies on AKS (blue/green, canary, shadow; champion/challenger) using Git Ops with Argo CD.
- Architect and evolve a self‑serve MLOps platform (standards, templates, CLI/scaffolds) enabling repeatable, secure model delivery.
- Operationalize scikit‑learn and other frameworks (e.g., PyTorch, XGBoost) for low‑latency, scalable serving.
- Implement CI/CD for ML (test, security scan, build, package, promote) using Git Hub Enterprise and related tooling.
- Integrate telemetry and observability (logging, metrics, tracing) and establish SLOs for model services.
- Monitor model and data drift; automate retraining, evaluation, and safe rollout/rollback workflows.
- Collaborate with software engineers to integrate ML services into client applications and shared platforms.
- Champion best practices for code quality, reproducibility, and governance (model registry, artifacts, approvals).
- Strong Python engineering skills and production experience building services with FastAPI.
- Proven MLOps experience: packaging, serving, scaling, and maintaining models as APIs.
- Hands‑on CI/CD for ML (Git Hub Enterprise or similar), including automated testing and release pipelines.
- Containerization and orchestration expertise (Docker, Kubernetes) with production deployments on AKS.
- Git Ops experience with Argo CD; practical knowledge of deployment strategies (blue/green, canary, rollback).
- Solid understanding of RESTful API design, microservices patterns, and API contract governance.
- Experience designing or contributing to an MLOps platform (standards, templates, tooling) for repeatable delivery.
- Ability to work cross‑functionally with data scientists, software, and platform/SRE teams.
- Minimum 2+ years related experience.
- Experience with ML lifecycle tools (MLflow or similar for tracking/registry) and feature stores.
- Exposure to Databricks and enterprise data/compute environments.
- Cloud experience on Azure (preferred), plus GCP familiarity and managed ML services.
- Familiarity with Agile practices; experience with Helm/Kustomize, secrets management, and security scanning.
Ampcus is an Equal Opportunity Employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, age, protected veterans or individuals with disabilities.
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