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Senior GCP Cloud MLOPS Engineer

CareersTech.Hub
Jiddah, KSA
fulltime
Mid-Senior
2 months ago
DockerGCPMachine LearningREST APIScalaVAT
Free

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Overview

We’re looking for a passionate and experienced

Machine Learning Engineer

to join our team and help build scalable, production-grade AI systems.

If you thrive at the intersection of machine learning, cloud architecture, and software engineering—this role is for you.

Key Responsibilities

  • You’ll take ML models from experimentation to production by designing and implementing end-to-end MLOps pipelines on Google Cloud Platform (GCP), including:
  • Data ingestion, feature engineering, model training, evaluation, and deployment
  • Building robust data pipelines and feature stores using BigQuery and Dataflow / Apache Beam
  • Training, versioning, and managing models via Vertex AI Workbench and Model Registry
  • Deploying real-time inference systems using Vertex AI Endpoints
  • Containerizing services with Docker and deploying via Cloud Run or GKE
  • Orchestrating workflows using Cloud Composer (Apache Airflow)
  • Developing secure REST APIs (FastAPI/Flask) for seamless integration with core systems
  • Implementing model monitoring to detect drift and ensure long-term performance

🌐 Architecture & Innovation

  • Design hybrid cloud AI solutions integrating on-prem systems with GCP
  • Build secure pipelines for data anonymization and tokenization (PHI/PII protection)
  • Ensure compliance with regional healthcare regulations and data sovereignty standards
  • Collaborate with cross-functional teams to translate business and clinical needs into scalable AI solutions
  • ✅ Job Requirements:
  • 3–5+ years of experience deploying ML models into production environments
  • Strong expertise in GCP for ML workloads
  • Proficiency in Python and ML frameworks (TensorFlow, PyTorch, scikit-learn)
  • Experience with FastAPI/Flask for model serving
  • Solid DevOps skills: Docker, CI/CD (Cloud Build, GitHub Actions), Terraform
  • Strong understanding of ML evaluation metrics (Precision, Recall, ROC-AUC)
  • Bachelor’s or Master’s degree in Computer Science, AI, or a related field

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