Digital Lab - Cloud Engineer
AI in this role
Design and automate AWS cloud infrastructure while leveraging AI-assisted tools to improve scripting and documentation.
GCL: C2
Introduction to role:Are you ready to harness the power of AWS and automation to accelerate scientific breakthroughs and bring medicines to patients faster? Join a high-impact team that builds secure, scalable cloud platforms enabling our labs and product teams to move from idea to value at speed.
In this role, you will design and automate cloud infrastructure that underpins critical digital capabilities. Working side-by-side with engineers, security specialists, data teams, and platform owners, you will raise deployment velocity, strengthen reliability, and unlock developer productivity. You will use modern engineering tools improved by artificial intelligence responsibly to amplify your impact and keep our platforms robust and compliant. Can you see yourself turning complex requirements into resilient, automated solutions that scale across a global enterprise?
Accountabilities:
Cloud Infrastructure: Design, implement, and maintain AWS compute, storage, networking, and identity services that deliver secure, scalable foundations for digital and lab applications.
Build reusable Terraform, CloudFormation, and CDK modules to standardize environments, reduce lead times, and improve quality. Use AI-assisted tools to improve scripting and documentation while maintaining detailed reviews.
CI/CD and Automation: Create and evolve pipelines in GitHub Actions, GitLab CI, Jenkins, or similar to automate build, test, security scanning, and deployment, driving consistent, auditable releases.
Containers and Platform Support: Deploy and operate Docker-based services on EKS, ECS, or Fargate, improving availability, release consistency, and operational efficiency for product teams.
Observability and Operations: Implement end-to-end tracking, recording, and alerting with CloudWatch, Prometheus, Grafana, OpenTelemetry, or OpenSearch; lead incident analysis and service improvement to reduce MTTR and prevent recurrence.
Security and Compliance: Embed identity and access controls, data protection, confidential information handling, vulnerability remediation, patching, and network controls into every layer of the stack; ensure AI tools are used responsibly and in line with enterprise policies.
Networking: Configure and optimize VPCs, subnets, route tables, NAT, security groups, load balancers, and DNS with guidance from senior engineers, supporting reliable connectivity and performance.
Migration and Modernization: Contribute to on-prem to AWS transition and projects focused on improving processes, accelerating environment setup, deployment automation, testing, and stabilization to de-risk cutovers.
AI-Enabled Engineering: Use enterprise-approved AI assistants to speed coding, infrastructure automation, troubleshooting, and documentation; validate outputs and uphold standards to ensure accuracy and compliance.
Cost Optimization: Implement tagging, monitor consumption, identify waste, and support rightsizing to reduce spend without sacrificing performance.
Documentation and Collaboration: Produce clear runbooks and implementation notes; engage developers, architects, security, and operations to align on designs and drive continuous improvement.
Value and Impact Progression: Deliver quick wins by stabilizing and automating priority services; then scale patterns, playbooks, and modules across teams to raise reliability and throughput enterprise-wide.
Essential Skills/Experience:
- 4–7 years of experience in DevOps, Cloud Engineering, SRE, Platform Engineering, or Infrastructure Automation
- Hands-on experience working with AWS cloud services in development, test, or production environments
- Good knowledge of Infrastructure as Code using Terraform, CloudFormation, or AWS CDK
- Experience with CI/CD tools such as GitHub Actions, GitLab CI, Azure DevOps, or Jenkins
- Hands-on experience with Docker and exposure to container orchestration platforms such as EKS, ECS, or Kubernetes
- Familiarity with AWS services such as EC2, S3, IAM, VPC, CloudWatch, Lambda, RDS, Route 53, and Load Balancers
- Understanding of Linux administration, scripting using Python, Bash, or Shell, and version control using Git
- Knowledge of basic cloud security practices including IAM, encryption, secrets handling, and vulnerability management
- Experience with monitoring, logging, and troubleshooting in cloud environments
- Practical experience using current AI tools in the market or AI-assisted engineering tools to improve productivity in coding, scripting, automation, troubleshooting, or documentation
- Ability to validate AI-generated outputs and use them responsibly in an engineering environment
- Good communication, collaboration, and documentation skills
Desirable Skills/Experience: - Experience supporting AWS migration or cloud transformation projects
- Exposure to EKS, Kubernetes, Helm, ArgoCD, or Flux
- Familiarity with serverless services such as Lambda, EventBridge, Step Functions, or API Gateway
- Exposure to observability tools such as Prometheus, Grafana, ELK/OpenSearch, or OpenTelemetry
- Understanding of policy-as-code, security scanning, or compliance tooling such as Checkov, OPA, Security Hub, GuardDuty, or Inspector
- Experience in regulated environments or teams with formal release and change management practices
- Familiarity with FinOps concepts such as tagging, budgeting, rightsizing, and cost allocation
- Experience using tools such as GitHub Copilot, Amazon Q, ChatGPT Enterprise, Claude, Cursor, or equivalent enterprise-approved AI tools
- Exposure to supporting data or AI/ML workloads on cloud platforms is a plus, but not required
- At least one relevant certification is preferred, such as: AWS Certified Solutions Architect – Associate; AWS Certified Developer – Associate; AWS Certified SysOps Administrator – Associate; CKA/CKAD; HashiCorp Terraform Associate
When we put unexpected teams in the same room, we unleash bold thinking with the power to inspire life-changing medicines. In-person working gives us the platform we need to connect, work at pace and challenge perceptions. That's why we work, on average, a minimum of three days per week from the office. But that doesn't mean we're not flexible. We balance the expectation of being in the office while respecting individual flexibility. Join us in our unique and ambitious world.
Why AstraZeneca:
Here, your engineering craft tangibly advances science. We pair technologists with scientists, analysts, and designers around the same table to spark new ideas and move fast—using modern cloud, data, and AI to solve real problems that affect patients worldwide. You will join a high-performing, collaborative community that values kindness alongside ambition, gives you the autonomy to take smart risks, and backs you with the expertise and tools to turn prototypes into resilient, compliant platforms. Your contribution will streamline how our enterprise operates today while building the digital foundations for tomorrow’s breakthroughs.
Call to Action:
Ready to build cloud platforms that accelerate discovery and deliver impact at scale—while stretching your skills on meaningful, high-visibility work? Apply to shape what science can do!
Date Posted
30-Sept-2026Closing Date
07-Oct-2026AstraZeneca embraces diversity and equality of opportunity. We are committed to building an inclusive and diverse team representing all backgrounds, with as wide a range of perspectives as possible, and harnessing industry-leading skills. We believe that the more inclusive we are, the better our work will be. We welcome and consider applications to join our team from all qualified candidates, regardless of their characteristics. We comply with all applicable laws and regulations on non-discrimination in employment (and recruitment), as well as work authorization and employment eligibility verification requirements.
How we rate this
Digital Lab - Cloud Engineer at AstraZeneca rates 45 out of 100 for how much of the daily work is AI. That makes it Uses AI (AI Level 2 of 4). The level is about AI in the job, not seniority.
Uses AI. An ordinary role that requires AI tools.
- ●●●● Builds AI80 to 100
- ●●●○ Works on AI60 to 79
- ●●○○ Uses AI40 to 59
- ●○○○ Little AI0 to 39
Levels come from how often the tools, models and workflows of the role are named in the posting itself. Open the description and count.
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Skills and AI tools this role asks for
Questions you could be asked
- Tell me about a project where cloud infrastructure was part of your work. What did you do?
- Tell me about a project where ci cd was part of your work. What did you do?
- Tell me about a project where automation was part of your work. What did you do?
- Tell me about a project where containers was part of your work. What did you do?
- Tell me about a project where observability was part of your work. What did you do?
Adapt your resume
- List these exact terms on your resume: Cloud Infrastructure, Ci Cd, Automation, Containers, and Observability. 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.
- Put the AI tool in a bullet point about what you did, not just in a skills list — this role treats it as a required part of the job.
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