Senior Machine Learning Engineer
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SeniorFull-time
#437460·Dodano 2 dni temu·0
Źródło: LinkGroupTech Stack / Keywords
Machine LearningData EngineeringPythonSparkDatabricksMLflowKafkaKubernetesGoAI
Firma i stanowisko
LinkGroup is a global technology organisation developing data-driven products used by millions of customers worldwide.
Wymagania
- Strong hands-on experience in Machine Learning Engineering and Data Engineering, ideally 5+ years building and operating production ML systems.
- Experience taking machine learning models or data products from experimentation into production.
- Strong Python skills and experience with technologies such as Spark and Databricks.
- Experience with ML platforms and tooling such as MLflow.
- Practical understanding of production ML systems including pipelines, model serving, monitoring, and observability.
- Experience with cloud, platform, or backend technologies such as Kafka, Kubernetes, or Go is advantageous.
- Strong statistical literacy and ability to design and interpret experiments and model metrics.
- Experience with AI development tools such as Claude Code, Cursor, or GitHub Copilot.
- Strong problem-solving and troubleshooting skills.
- High level of ownership and pragmatic, delivery-focused mindset.
- Ability to work effectively in cross-functional and international environments.
- Good product sense connecting technical solutions with business and user outcomes.
Obowiązki
- Build, maintain, and improve ML infrastructure, repositories, developer tooling, and engineering workflows.
- Design and operate data products and machine learning systems from experimentation through to production.
- Build robust data pipelines and integrations supporting machine learning and decisioning systems.
- Develop scalable AI-powered solutions for content generation, search, and asset retrieval.
- Build production-grade pipelines and model-serving layers focusing on reliability, latency, and observability.
- Collaborate closely with Data Scientists to turn experimental models into production services.
- Establish and improve ML engineering standards, CI/CD practices, and platform solutions, including Databricks and MLflow.
- Monitor production systems, data quality, model performance, drift, and latency.
- Diagnose issues under real-world load and implement reliable solutions.
- Take ownership of systems built and continuously improve based on data and user outcomes.
- Collaborate with engineers, data scientists, and product stakeholders across international teams.
- Use AI-assisted development tools daily.
Benefity
- Work on large-scale, globally used technology products.
- Collaborate with experienced engineers, Data Scientists, and Product professionals across international teams.
- Modern technology stack and influence architecture and engineering practices.
- End-to-end ownership from problem definition to production operation.
- Collaborative, autonomous, product-oriented working environment.
- Opportunities to work with AI, machine learning, and data at significant scale.
- Access to a modern office in Warsaw with flexible and employee-friendly facilities.
Link Group
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