Level

Roche

Fullstack Data Engineer - Applied & Agentic AI Systems

AI in this role

claudeclaude-code
ragai-agentsfine-tuningai-safety

At Roche you can show up as yourself, embraced for the unique qualities you bring. Our culture encourages personal expression, open dialogue, and genuine connections,  where you are valued, accepted and respected for who you are, allowing you to thrive both personally and professionally. This is how we aim to prevent, stop and cure diseases and ensure everyone has access to healthcare today and for generations to come. Join Roche, where every voice matters.

The Position

Job description

Our Applied AI Engineering Team is seeking a fullstack AI Data Engineer to join a newly formed, autonomous development squad dedicated to pioneering agentic, LLM-based solutions. Operating across the entire lifecycle—from initial ideation and rapid prototyping to production-grade deployment and ongoing operations—you will architect the resilient data infrastructure required to power next-generation AI. We are looking for an expert capable of orchestrating both structured and unstructured datasets, implementing high-performance vector databases, and managing real-time streams within cloud-native environments.

Description of the area

At Roche Digital Technology, we are advancing the boundaries of Applied AI. The Applied AI Engineering Team focuses on architecting, building, and operating high-value AI solutions and services to solve complex business challenges in healthcare.

In the 2026 tech landscape, we operate in small, highly autonomous agile teams (e.g., ~9 members) powered by advanced coding agents (like Claude Code) to develop and ship solutions faster than ever before. In this highly regulated environment, quality cannot be an afterthought. You will be the foundational pillar ensuring our rapidly developed agentic workflows and AI, GenAI, and agentic applications are safe, compliant, and robust before they reach the clinical or enterprise user.

Job Responsibilities

  • Generative AI Application Co-creation: Collaborate with AI engineers, data scientists, product owners, and other developers in Agile teams to integrate LLMs into scalable, robust, fair, and ethical end-user applications, focusing on user experience, relevance, and real-time performance

  • Data Infrastructure Development and Data Integration: Design and implement scalable, high-performance data pipelines for AI/GenAI applications, ensuring efficient data ingestion, transformation, storage and retrieval; integrate different databases, requiring understanding of data architectures / Domain data ecosystem

  • Vector Databases: work with vector databases (e.g., AWS OpenSearch, Azure AI Search) to facilitate scalable, high-speed similarity search and RAG for generative AI applications with high-dimensional data.

  • Graph Databases: Work with graph databases (e.g., Neo4j, AWS Neptune) to enable GraphRAG, support multi-hop logical reasoning for agentic workflows, and provide auditable explainability for enterprise AI decision-making.

  • Cloud-Based Data Engineering: Build and maintain cloud-based data solutions using AWS (OpenSearch, S3) or Azure (Azure AI Search, Azure Blob Storage)

  • Snowflake Implementation: Design and optimize data storage and processing using Snowflake for scalable, cloud-native analytics solutions

  • Data Processing & Transformation: Develop ETL/ELT pipelines to enable real-time and batch data processing

  • Support AI Model Workflows: Collaborate with AI/ML Engineers and Data Scientists to ensure seamless integration of data pipelines with AI finetuning, inference and training workflows

  • Performance Optimization: Optimize data storage, retrieval, and processing strategies for efficiency, scalability, and cost-effectiveness

  • Software Development Lifecycle: understand and leverage an agentic software development lifecycle (SDLC) in day to day work

  • Security & Compliance: Implement data governance, security best practices, and compliance measures aligned with Roche’s standards

  • Monitoring & Maintenance: Set up monitoring, alerting, and logging for data pipelines, ensuring high availability and reliability

Skills

Must have:

  • Experience: 7+ years in data engineering, preferably supporting AI/ML applications

  • Advanced Programming & SQL: Writing production-grade code in Python alongside highly optimized, complex SQL queries.

  • Advanced System Architecture & Modeling: Designing scalable, fault-tolerant ETL/ELT data pipelines and Lakehouse architectures (e.g., Snowflake).

  • Orchestration: Hands-on expertise with orchestration tools (like Airflow).

  • Data Engineering in AI: Developing Retrieval-Augmented Generation (RAG), AI systems powered by Vector Databases and/or LLM fine-tuning, and data preparation

  • Document Processing Proficiency: Extracting, transforming, and loading data from diverse file formats (PDF, DOCX, CSV, JSON, etc.), including automated parsing and information retrieval from unstructured and semi-structured documents

  • Version Control & DevOps: Hands-on experience with Git, CI/CD, containerization (Docker, Kubernetes), and Infrastructure as Code (Terraform, CloudFormation)

  • Problem Solving: Excellent analytical skills and the ability to tackle complex challenges with innovative solutions

Should have:

  • AWS Cloud Platforms: Hands-on experience with AWS (OpenSearch, S3, Lambda, AWS fundamentals) 

  • GraphDB: Experience in building solutions with GraphDB

  • APIs & Microservices: Ability to design and integrate RESTful APIs for data exchange

  • Data Security & Governance: Understanding of encryption and role-based access controls

  • Working in an SDLC environment meeting regulatory requirements

  • Proficiency in best practices of software engineering

  • Agentic SDLC & Engineering Excellence: Leverage AI coding assistants and autonomous agents (e.g., Claude Code, Ona) daily to accelerate full-stack development and testing cycles. Conduct rigorous code reviews for both human-written and AI-generatd code.

Could have:

  • Regulatory Compliance: Proven experience in working within highly regulated industries.

  • Data Science & Classical Machine Learning: Practical background in Data Science, encompassing feature engineering, model training, and data preparation leveraging traditional ML techniques.

  • Distributed Data Processing: Hands-on expertise with big data frameworks (like Apache Spark or Flink).

Capabilities:

  • Problem-Solving Skills: Excellent analytical skills to tackle complex engineering and statistical challenges.

  • Ownership & Leadership: Deep sense of accountability, eager to define architectural patterns, and able to step into a Tech Lead role when necessary.

  • Consulting: Ability to work closely with stakeholders across the enterprise to consult on the technological approaches to their business problems.

  • Ethics: Strong understanding of biases, fairness, hallucination mitigation, and responsible AI deployment.

Qualifications

  • hold B.Sc., B.Eng., or higher, or equivalent in Computer Science, Data Engineering or related fields

  • have an interest in AI and stay up to date with the latest advancements in data engineering

  • be team-oriented, proactive, and collaborative

  • have strong analytical and problem-solving skills

  • have excellent verbal and written communication skills

  • be detail-oriented and highly organized

  • be willing to learn and expand their skill set

  • have the ability to work collaboratively in a fast-paced, dynamic environment

  • be able to communicate in English at the level of C1+

  • Located in Hyderabad, India, with working hours structured to capture the 'golden hours' of overlap with Central European Time (typically running through the IST evening).

Shift: CET time zone

#Hyderabad2026

 

 

Who we are

A healthier future drives us to innovate. Together, more than 100’000 employees across the globe are dedicated to advance science, ensuring everyone has access to healthcare today and for generations to come. Our efforts result in more than 26 million people treated with our medicines and over 30 billion tests conducted using our Diagnostics products. We empower each other to explore new possibilities, foster creativity, and keep our ambitions high, so we can deliver life-changing healthcare solutions that make a global impact.


Let’s build a healthier future, together.

Roche is an Equal Opportunity Employer.

How we score this

Fullstack Data Engineer - Applied & Agentic AI Systems at Roche scores 88 out of 100 on AI centrality, which makes it AI Level 4 of 4 (Builds AI) on this board. The level measures how much of the work is AI, not seniority.

Classification

AI Level 4. Building AI systems is the job itself: without AI, the role would not exist.

  1. AI Level 480 to 100
  2. AI Level 360 to 79
  3. AI Level 240 to 59
  4. AI Level 10 to 39

Bands come from how often the tools, models and workflows of the role are named in the posting itself. Open the description and count.

Prepare for this job

A free preview built only from this posting: what it asks for, what you could be asked in an interview, and how to adjust your resume.

Skills and AI tools this role asks for

RagAI AgentsFine TuningAI SafetyClaudeClaude Code

Questions you could be asked

  1. How would you design a retrieval step so the model answers from real data instead of guessing?
  2. How do you decide when an AI agent can act on its own versus asking for approval first?
  3. Walk me through fine-tuning a model: what data did you use, and how did you check the result?
  4. How do you think about the risk of an AI system in this kind of role failing silently?
  5. Walk me through how you've used Claude in your day-to-day work.

Adapt your resume

  • List these exact terms on your resume: Rag, AI Agents, Fine Tuning, AI Safety, and Claude. An applicant tracking system matches the wording, not the idea.
  • Attach one line of real, concrete experience to at least one of them — a tool named with nothing behind it rarely survives a human read.
  • Lead with what you built, trained or shipped — this role is judged on the AI system itself, not the tools around it.

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