Job Description
Note: By applying to this position you will have an opportunity to share your working location from the following: Munich, Germany; Frankfurt, Germany.\n\nMinimum qualifications:\n\nBachelor's degree in Computer Science or equivalent practical experience.\n\n3 years of experience building and deploying machine learning solutions (including both Classical ML/Deep Learning and Generative AI) and working directly with technical customers or stakeholders.\n\nExperience designing cloud enterprise solutions and supporting customer projects to completion.\n\nExperience coding in one or more general purpose (e.g., Python, Java, Go, C or C++) including data structures, algorithms, and software design.\n\nAbility to communicate in English and German fluently to support client relationship management in this region.\n\nPreferred qualifications:\n\nExperience building Generative AI applications, including working with foundation models, Retrieval-Augmented (RAG), vector databases, and orchestration frameworks.\n\nExperience with deep learning frameworks (e.g., TensorFlow, pyTorch, XGBoost).\n\nKnowledge of data warehousing concepts, including data warehouse technical architectures, infrastructure components, ETL/ ELT and reporting/analytic tools and environments (e.g., Pig, Hive, MapReduce, Flume).\n\nKnowledge of data engineering concepts, distributed data pipelines, and infrastructure tools (e.g., Apache Beam, Hadoop, Spark, BigQuery).\n\nUnderstanding of real-world system design, trade-offs, and the auxiliary practical concerns in productionizing AI systems (ML Opeartions, LLM Opeartions, Continuous Integration /Continuous Deployment for ML, Model Monitoring).\n\nAbout the job\n\nThe Google Cloud Consulting Professional Services team guides customers through the moments that matter most in their cloud journey to help businesses thrive. We help customers transform and evolve their business through the use of Google's global network, web-scale data centers, and software infrastructure. As part of an innovative team in this rapidly growing business, you will help shape the future of businesses of all sizes and use technology to connect with customers, employees, and partners.\n\nAs a Cloud AI Engineer, you will design, prototype, and implement state-of-the-art AI solutions for customer use cases.
In this role, you will act as an ML generalist, bridging the gap between research and enterprise production. You will leverage core Google products-including Vertex AI, our latest foundation models (Gemini), TensorFlow, and Dataflow-to build both classical machine learning pipelines (e.g., predictive modeling, forecasting, clustering) and advanced Generative AI applications.\n\nYou will work directly with our most ambitious customers to identify high-impact opportunities, rapidly prototype solutions, and transition those prototypes into robust, scalable production systems. Together with the team, you will support customer implementation through architecture guidance, system design, Machine Learning Operations/Large Model Opeartions best practices, capacity planning, and hands-on coding.
Additionally, you will work closely with Product Management and Product Engineering to share field insights and constantly drive excellence in our AI portfolio.\n\nGoogle Cloud accelerates every organization's ability to digitally transform its business and industry. We deliver enterprise-grade solutions that leverage Google's technology, and tools that help developers build more sustainably. Customers in more than 200 countries and territories turn to Google Cloud as their trusted partner to enable growth and solve their most critical business problems.\n\nResponsibilities\n\nConsult with customers to solve complex technical challenges, anticipating issues before they arise and offering a breadth of scalable solutions and trade-offs.\n\nWrite clean, well-structured, production-ready code to integrate classical ML models and Generative AI into enterprise environments.\n\nGuide customers on the practical challenges of production AI systems, spanning traditional ML (feature extraction, data validation, model tuning, and evaluation) and GenAI (prompt engineering, model evaluation, fine-tuning, and large operations (LLM) opeartions).\n\nWork with Customers, Partners, and Google Product teams to design real-world, practical systems, shifting customized AI prototypes into highly reliable, scalable production architectures on Google Cloud.\n\nTravel up to 30% of the time as needed within region for meetings, technical reviews, and onsite delivery activities.\n\nGoogle is proud to be an equal opportunity workplace and is an affirmative action employer.
We are committed to equal employment opportunity regardless of , , ancestry, , , , , , citizenship, marital status, , or Veteran status. We also consider qualified applicants regardless of criminal histories, consistent with legal requirements. See also Google's EEO Policy and EEO is the Law.
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