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Agent guide: [/agents.md](https://www.wearedevelopers.com/agents.md). --- # Engineering Manager, Data Platform & ML Ops - **Company:** Jobgether - **Location:** Germany - **Experience:** Experienced - **Contract:** Permanent contract - **Skills:** Amazon Web Services, BigQuery, Software as a Service, Cloud Database, Information Engineering, Data Infrastructure, Machine Learning, Software Engineering, Snowflake, Storage Technologies, Data Analytics, Data Management, Machine Learning Operations, Vertica, Databricks - **Published:** August 10, 2026 - **Apply:** https://www.adzuna.de/details/5834810770 ## About the Role The ideal candidate is an experienced engineering leader with a strong background in data engineering, ML engineering, or related software engineering disciplines. You should combine technical expertise with proven people leadership skills and the ability to deliver scalable, reliable solutions. * At least 2 years of experience managing engineering teams focused on data platforms, machine learning, or related technologies. * 5+ years of professional experience in data engineering, ML engineering, or software engineering roles, preferably within SaaS environments. * Strong understanding of both data infrastructure and machine learning systems, with the ability to provide technical direction across both areas. * Experience leading engineers across multiple technical disciplines and supporting high-performing teams. * Proven ability to deliver reliable data products and platforms with a focus on quality, scalability, and user impact. * Experience driving technical change and innovation in fast-paced, growing organizations. * Familiarity with analytical storage technologies such as ClickHouse, Databricks, Snowflake, or BigQuery. * Experience with ML lifecycle tools, including training pipelines, model serving, and production monitoring. * Knowledge of cloud-based data and ML infrastructure, particularly AWS environments. * Strong communication, collaboration, and stakeholder management skills. ## Description This role offers the opportunity to lead a high-performing engineering team building the foundation for advanced data and machine learning capabilities. You will oversee critical platforms that power analytics, intelligent products, and scalable ML operations. The position combines technical leadership, people management, and strategic decision-making in a fast-moving environment. You will guide engineers, influence architecture, and establish best practices across data infrastructure and ML systems. Working closely with cross-functional teams, you will transform complex data challenges into impactful solutions. This is an ideal opportunity for an experienced engineering leader passionate about innovation, reliability, and team growth. Accountabilities: As an Engineering Manager, you will lead the development and evolution of data platforms and ML operations capabilities while supporting engineering excellence and business impact. You will be responsible for building strong teams, driving technical strategy, and ensuring reliable systems that enable data-driven products. * Lead and mentor a team of engineers working across data platforms and machine learning operations. * Own the reliability, scalability, and continuous improvement of internal data infrastructure supporting analytics and product initiatives. * Oversee the complete ML lifecycle, including experimentation, training pipelines, model deployment, and production monitoring. * Provide technical guidance by contributing to architecture discussions, reviewing solutions, and helping teams make effective engineering decisions. * Collaborate with data scientists, product managers, analysts, and engineering leaders to turn data and ML investments into measurable outcomes. * Establish engineering standards, processes, and best practices across data engineering and ML operations. * Support team development through coaching, feedback, knowledge sharing, and career growth opportunities. * Drive innovation and continuous improvement within a rapidly evolving technical environment. ## Related Videos - [From Messy Queries to Scalable Systems - How Data Engineering actually works](https://www.wearedevelopers.com/videos/100203-from-messy-queries-to-scalable-systems-how-data-engineering-actually-works) - [Data Science in Retail](https://www.wearedevelopers.com/videos/586-data-science-in-retail) - [How Cisco embraced a DevOps culture within its network engineering team](https://www.wearedevelopers.com/videos/99-how-cisco-embraced-a-devops-culture-within-its-network-engineering-team) - [Data Governance in the Era of AI](https://www.wearedevelopers.com/videos/1622-data-governance-in-the-era-of-ai) - [Modern Data Architectures need Software Engineering](https://www.wearedevelopers.com/videos/1030-modern-data-architectures-need-software-engineering) - [Making Data Warehouses fast. 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