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Machine Learning Engineer (GCP)

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  • Posted 4 days ago
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Job Description

5 - 10 years

Hyderabad

Full-Time

Job Summary

We are looking for an experienced Machine Learning Engineer / MLOps Engineer to design, deploy, and maintain scalable machine learning solutions on Google Cloud Platform (GCP). The ideal candidate will have strong expertise in production ML systems, CI/CD automation, Vertex AI, and model lifecycle management while collaborating closely with cross-functional teams to operationalize machine learning models.

Key Responsibilities

    • Design, build, and maintain training and inference pipelines for storm outage prediction workflows.
    • Implement CI/CD, orchestration, and automation for machine learning workflows using Vertex AI and related GCP services.
    • Deploy machine learning models into production environments and manage model lifecycle processes, including versioning and rollout support.
    • Set up and maintain baseline monitoring for model drift, performance, reliability, and alerting.
    • Create scalable, production-ready ML workflows and supporting technical documentation.
    • Collaborate with data scientists, engineers, and project stakeholders to operationalize models and align deployment architecture with project needs.
    • Support troubleshooting, performance tuning, and continuous improvement of ML platform components.
    • Contribute to engineering best practices across code quality, release processes, and environment stability.
Required Qualifications

    • 5–10 years of experience in machine learning engineering, MLOps, or related production ML engineering roles.
    • Strong proficiency in Python and experience developing scalable data and ML workflows.
    • Hands-on experience with Google Cloud Platform, including Vertex AI, BigQuery, Cloud Storage, Cloud Run, Cloud Functions, or comparable services.
    • Experience with GitHub Actions or similar CI/CD tooling.
    • Demonstrated experience building CI/CD pipelines and automating ML model deployment and orchestration.
    • Experience with model monitoring, observability, and production support for machine learning systems.
    • Strong understanding of software engineering best practices, including version control, testing, and documentation.
    • Ability to work effectively across distributed teams and communicate clearly with technical and non-technical stakeholders.
Preferred Qualifications

    • Experience supporting forecasting, outage prediction, or other data-intensive operational use cases.
    • Familiarity with utility, energy, weather, or geospatial data domains.
    • Exposure to model registry, retraining automation, and ML lifecycle governance practices.
    • Prior experience working in offshore or globally distributed delivery models.
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Job ID: 152082881

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