Senior MLOps Engineer (Google Cloud)
140 - 170 PLN/ godz.
SeniorFull-time
#414081·Dodano 2 dni temu·0
Źródło: SpyrosoftTech Stack / Keywords
GCPMLOpsGoogle CloudMachine LearningCloudGoogle Cloud PlatformPythonCI/CD
Firma i stanowisko
Join a team focused on building and scaling enterprise-grade machine learning platforms on Google Cloud.
Wymagania
- Strong hands-on experience in MLOps, ML Platform Engineering, or Machine Learning Operations
- Proven production experience with Vertex AI and/or Gemini Enterprise Agent Platform Pipelines
- Strong Python software engineering skills
- Solid experience with Google Cloud Platform services, especially BigQuery
- Experience building modular and reusable ML pipeline components
- Hands-on experience with CI/CD practices and tools in production environments
- Strong understanding of model versioning, monitoring, retraining strategies, and reproducibility
- Knowledge of software engineering best practices, testing methodologies, and code quality standards
- Experience working closely with Data Scientists and translating experimental models into production-ready solutions
- Fluent English (C1)
Nice to have:
- Google Cloud Professional Machine Learning Engineer certification or equivalent
- Experience with infrastructure as code and cloud automation tools
- Knowledge of cost optimization practices for machine learning workloads
- Experience using AI tools in day-to-day workflow
Obowiązki
- Build and maintain production-grade ML workflows using Vertex AI and Gemini Enterprise Agent Platform Pipelines
- Design and develop reusable components for model training, evaluation, registration, deployment, monitoring, and retraining
- Implement automated model lifecycle management, including quality controls and approval processes
- Integrate ML pipelines with BigQuery and other Google Cloud services
- Collaborate with engineering teams to integrate ML workflows into CI/CD pipelines and multi-environment deployment processes
- Work closely with Data Scientists to productionize machine learning models and experimental code
- Improve reliability, observability, scalability, and cost efficiency of machine learning workloads
- Implement monitoring and alerting mechanisms for model performance and platform health
- Support best practices related to governance, reproducibility, and ML platform standards
- Contribute to technical design discussions and continuous improvement initiatives within the MLOps ecosystem
Benefity
- Fully remote work
- Competitive hourly salary between 140 and 170 PLN
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