Senior Data Engineering Consultant (German-speaking)

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Die ganze Ausschreibung von Machine Learning Architects Basel (MLAB)

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Das ist der Job

Aufgaben Consulting, Engineering & Training : You perceive data, software, and AI engineering as key capabilities for mastering the challenges of our clients' digital transformations, want to help them understand both their potential and their limitations, and deliver impactful, valuable services.

Das brauchst du

Qualifikation Professional experience (minimum 5 years) as a Data or Software Engineer with a focus on data and ML systems.

Darum lohnt es sich

Enable technical and non-technical teams and individuals to leverage data science and management, data, ML, and reliability engineering in an end-to-end fashion.

Ownership, Communication, Knowledge Sharing & Teamwork : You take ownership of your work, present your results to various stakeholders, share your knowledge, and collaborate (pro‑actively) with our and your client’s teams. Benefits A young and dynamic services company with an experienced, knowledgeable, and passionate team.

A culture that is both performance‑oriented and customer‑driven and at the same time team‑oriented, friendly, and supportive, incl. regular knowledge‑sharing sessions and team events.

A hybrid working model with flexibility as long as both client (of which most require onsite presence) and internal commitments (i.e., one team office day per week) are met. #J-18808-Ljbffr At Machine Learning Architects Basel (MLAB), we assist and empower people and organizations in designing, building, and operating reliable data and machine learning solutions.

In doing so, our data and AI journeys and effective solution patterns enable our customers to operationalize, scale, and continuously deliver data and AI products beyond the pilot and prototype stages . These patterns and frameworks revolve not only around the latest technologies but also consider role, skills, and process adjustments.

We thereby: Help our customers realize the full potential of data and AI solutions, from use case identification, over data, and ML platform implementation to integration and testing operation of ML models, LLMs, and other GenAI solutions.

Design, test, integrate and operate data, model and code pipelines, and end-to-end data/ML/LLM systems (DataOps, MLOps & DevOps). Do you want to contribute to our dynamic and growing services company with your Machine Learning, AI, and Software Engineering knowledge?

Do you want to act as a thought leader and trusted advisor in the field of Data Products and Data Mesh ? Requirement Analysis : You analyze customer requirements and identify and define best‑fit solutions.

Implementation of Data Pipelines and Platforms, ML/LLM Integrations, Reliability Engineering & Operationalization : You understand how to successfully deliver data projects from the prototype or pilot phase into production, design, build, integrate and test data pipelines and platforms, and implement engineering best practices such as traceability, reliability, scalability, measurability, and automation within a demanding project and technology environment.

Concept Development : You contribute to our solution blueprints and concepts (e.g., our journey for ‘Reliable Data Products & Efficient Data Meshes’). Expertise & Thought Leadership : You strive to become an expert and a trusted advisor in the field of Data Platforms, Data Products, and DataOps.

Experience with and, ideally certified in, major data and AI platforms (e.g. Snowflake, Databricks, AWS, Azure, MS Fabric). Familiarity with data analytics and DataOps best practices, as well as topics such as Data Mesh, Data Lake/Warehouses, and Reliability Engineering.

Understanding and strong interest in the end‑to‑end life cycle of projects, code, model, and data pipelines, and working with various stakeholders. Technical, hands‑on experience with at least some of the following: Programming languages Distributed systems (Hadoop, Spark) and data structures. SQL and NoSQL databases. Cloud Services.

REST API and microservices. Docker and knowledge of Kubernetes. Agile development methods and CI/CD. Experience working in a client‑facing or consulting role. Fluency in German and English (written and spoken). Swiss passport or a valid EU/EFTA work permit.

An entrepreneurial environment and the chance to have a real impact on the company’s development and growth. Work on cutting‑edge data, AI, and analytics topics that have a real impact across industries.

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