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21co Technologies jobs

Tech Lead, Data Engineering

CHF 190’000 - 210’000 ❖
21co Technologies
37 Pelikanstrasse, ZĂĽrich
CHF 190’000 - 210’000 ❖
Unternehmensgrösse icon
Unternehmensgrösse
<50
Unternehmenstyp icon
Unternehmenstyp
Startup
Erfahrungsstufe icon
Erfahrungsstufe
Senior
Anstellungsart icon
Anstellungsart
Vollzeit
Sprache icon
Sprache
Englisch
Visa Sponsoring icon
Visa Sponsoring
Nein

Anforderungen

Muss:
8+ years of experience as a Data Engineer with 3+ years focused on MLOps. Strong proficiency in Python, SQL, and data orchestration tools (e.g., Airflow). Experience with cloud platforms like AWS (SageMaker), Google Cloud Platform (Vertex AI), or Azure Machine Learning for managed LLM deployments. Familiarity with data warehouse solutions such as Snowflake or BigQuery. Experience with big data technologies like Spark, Hadoop, or Kafka.
Gut zu haben:
Experience with containerization tools like Docker and orchestration platforms like Kubernetes. Familiarity with modern data streaming tools (e.g., Kafka, Kinesis). Familiarity with Natural Language Processing (NLP) / LLM. Familiarity with chunking & data transformation for LLMs. Familiarity with Vector Databases / Embedding Stores. Hands-on experience with real-time analytics or machine learning pipelines. Exposure to or interest in data visualization tools like Tableau, Looker, or Streamlit. Experience with specialized LLM techniques and RAG. Implementation of OpenTelemetry for distributed tracing and integration with Betterstack/Grafana dashboards.

Verantwortlichkeiten

Design and maintain scalable data pipelines tailored to LLM requirements, including preprocessing unstructured text data from various sources, implementing chunking strategies, and optimizing embedding generation for vector databases. Build and manage data infrastructure, including data warehouses, data lakes, and streaming solutions, specifically optimized for LLM workflows. Deploy LLMs into production environments using containerization (Docker) and orchestration tools (Kubernetes). Automate CI/CD pipelines for model versioning, A/B testing, and rollback procedures, ensuring seamless updates to fine-tuned models. Optimize data systems for performance, reliability, and scalability, particularly for real-time inference for applications like chatbots or document analysis. Implement MLOps-driven model deployment and monitoring, tracking key metrics such as inference latency, token usage costs, and output quality drift. Manage vector databases (e.g., Qdrant, Pinecone, FAISS) and design indexing strategies for Retrieval-Augmented Generation (RAG) architectures. Collaborate with data scientists/analysts, and other stakeholders to understand data and LLM requirements and deliver solutions. Create and maintain documentation for all data-related processes, procedures, and workflows, including LLM-specific pipelines and deployments. Research and stay up-to-date with the latest trends, technologies, and best practices in data engineering, MLOps, and LLM technologies. Mentor junior engineers, conduct technical reviews and provide active guidance. Contribute to technical roadmap planning, architectural decision-making and lead technical initiatives. Implement data governance best practices, establish and enforce data quality standards across teams and projects. Identify and mitigate technical risks in data infrastructure and LLM deployments.

Beschreibung


We are seeking a highly motivated and skilled Data Engineer with a focus on MLOps and Large Language Models (LLMs) to join our team as Technical Lead and help us design, build, and maintain robust data pipelines and infrastructure. As a Data Engineer with expertise in LLMs, you will be responsible for ensuring data is accessible, reliable, and optimally structured to support analytics, machine learning, and LLM-driven applications. You will work on cutting-edge technologies and collaborate closely with cross-functional teams, enabling you to make a significant impact on our data-driven and AI-focused strategies. This role integrates core data engineering principles with MLOps practices to support the full lifecycle of LLM-driven applications, from data preparation to production monitoring. This role offers opportunities for growth, innovation, and learning in a dynamic and fast-paced environment.

Zusatzleistungen

job benefits iconJährlicher Firmenretreat
job benefits iconKarriereweg und JahresrĂĽckblick
job benefits iconCooles BĂĽro
job benefits iconHybride Arbeit
job benefits iconStartup-Kultur
job benefits iconHome Office / Remote 2 Tage pro Woche
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