Software Engineer, Full Stack — Decision Intelligence
Amgen
This listing was originally posted on Amgen's careers page. Formulate is an equal opportunity job aggregator and is not involved in the hiring process. Where salary information is estimated, it is derived from BLS industry benchmarks and may differ from actual compensation.
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Upgrade to Pro — $25/moSoftware Engineer, Full Stack — Decision Intelligence
ABOUT AMGEN
Amgen harnesses the best of biology and technology to fight the world’s toughest diseases and make people’s lives easier, fuller, and longer. We discover, develop, manufacture, and deliver innovative medicines to help millions of patients. Amgen helped establish the biotechnology industry more than 40 years ago and remains at the cutting edge of innovation, using technology and human genetic data to push beyond what is known today.
The opportunity
Amgen’s AI & Data Science team is building decision-intelligence products that help teams make faster, more defensible decisions under uncertainty. We are seeking a Software Engineer, Decision Intelligence to join the Forecasting & Decision Intelligence team within the AI & Data organization. This role will help develop scenario-planning capabilities—including visualization, capacity, and AI-assisted decision workflows—while contributing to reusable foundations for forecasting, simulation, optimization, and decision products across the enterprise.
We are seeking a Full-Stack Engineer who can build high-quality product experiences across the frontend and backend. You will develop the interfaces people use to configure, launch, monitor, compare, and understand complex scenarios, as well as the APIs, data integrations, and execution services that make those experiences trustworthy.
What you will do
· Develop intuitive planner experiences for configuring scenarios, managing assumptions, monitoring runs, comparing outcomes, and understanding uncertainty and trade-offs.
· Build responsive, accessible React/TypeScript user interfaces and reusable frontend components for scenario setup, results visualization, and decision workflows.
· Develop APIs, backend services, data integrations, and execution workflows for forecasting, simulation, optimization, and AI-assisted decision products.
· Work closely with product managers, planners, data scientists, and adjacent engineering teams to translate business needs into clear, valuable product increments.
· Participate actively in code reviews, technical design discussions, and continuous improvement of engineering practices.
Basic qualifications
· Bachelor’s degree in computer science, engineering, or a related field, or equivalent practical experience.
· 5+ years of professional software-engineering experience building and supporting production applications.
· Full-stack engineering experience, including modern frontend development with React and TypeScript and backend API development with Python or another modern server-side language.
· Experience building usable, data-rich web applications in partnership with product, design, and business stakeholders.
· Experience with relational SQL and data-intensive applications, including integration with warehouse, lakehouse, or operational data systems.
· Familiarity with asynchronous processing, queues, workflow engines, or similar patterns for long-running workloads.
· Experience with cloud deployment, containers, CI/CD, automated testing, and production troubleshooting.
· Commitment to code quality, accessibility, documentation, observability, and operational ownership.
Preferred qualifications
· Experience with FastAPI, Databricks, Spark, Kubernetes, modular frontend architectures, or comparable technologies.
· Experience building interactive visualizations and comparison workflows for analytical, operational, financial, or planning users.
· Experience embedding statistical models, optimization engines, simulation, or machine-learning capabilities into production applications.
· Experience with API and data-contract versioning, enterprise identity and access management, and secure integrations.
· Experience in supply chain, manufacturing, healthcare, finance, or another complex operational domain.
· Familiarity with AI-assisted product experiences and appropriate grounding, evaluation, and human-review controls.
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