Backend Engineer (Python)

Shelf

Warszawa

On-site

PLN 240,000 - 420,000

Full time

14 days+

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Benefits offered by this job

Company Stock Options
MacBook Pro
GitHub Copilot
Open-source software

Job summary

Shelf is looking for middle to senior backend engineers to design and own critical systems. You will take real ownership from architecture to production, delivering scalable, reliable backend services. The role emphasizes clear communication, strong judgment, and scalable engineering practices.

The team values AI-native approaches, code quality, and collaboration with product and platform engineers. Expect growth through ownership and impactful, scalable solutions on a hard mission.

Qualifications

  • Backend senior engineering experience in production systems.
  • Strong Python skills and clean, maintainable backend code.
  • Good distributed systems judgment: concurrency, failure handling, data consistency, async work, service boundaries.
  • Hands-on cloud infrastructure experience (AWS, GCP, or Azure).
  • Comfort with database schema design and performance tuning for real-time/high throughput.
  • Security-focused approach to enterprise-grade requirements and sensitive data.

Responsibilities

  • Build backend services, APIs, data flows, and background processing for production systems.
  • Turn vague requirements into concrete technical plans and execution.
  • Own services after launch: reliability, observability, performance, and incident follow-through.
  • Instrument deployments and use production signals to iterate.
  • Design sound system boundaries, data models, interfaces, and scaling paths.
  • Collaborate with product, frontend, and platform teams to deliver end-to-end outcomes.
  • Raise engineering leverage with AI tooling and internal workflows.

Skills

Backend Engineering
Python
Systems Thinking
Cloud (AWS/GCP/Azure)
Databases
Security
Ownership
Communication
AI-Native

Tools

TypeScript
APIs

Job description

About Shelf

Shelf is the operating system for agentic AI: a platform that models your policies, workflows, and operational logic into an AI Data Model so AI agents don't just respond—they reason. The result is AI that understands how your business actually operates and delivers precise, compliant, and auditable outcomes at scale.

Leading enterprises including Amazon, Nespresso, HelloFresh, and KeyBank use Shelf to power AI agents that automate complex workflows, improve operational efficiency, and transform manual processes into intelligent automation.

We're partnered with Microsoft, Salesforce, OpenAI, Snowflake, and Databricks, and have been recognized by Gartner as a Cool Vendor and by IDC as an Innovator for our approach to enterprise AI.

About the Role

This role is for Middle and Senior backend engineers who can design and own business-critical systems.

We want someone who is strong technically, communicates clearly, and has the judgment to make systems simpler, safer, and easier to evolve over time. Expect real ownership from system design through production.

The team is small enough for engineers to make real decisions. Career growth comes from ownership. Titles matter less than the scope you can carry. The people who grow fastest take responsibility for larger systems, drive customer outcomes, and strive to develop better engineering practices.

You solve ambiguous problems by shaping the right architectural approach, then ship, iterate, and keep it healthy in production.

We build AI-native. Engineers use Codex, Claude Code, and agents they build themselves. We invest in harness engineering through skills, CLIs, logs, traces, and orchestration.

This is a role for someone in a high-growth chapter of their career, who wants to do the best work of their life, learn fast, and win as part of a team going all-in on a hard mission.

What You Will Own
  • Build Systems: Design and ship backend services, APIs, data flows, and background processing for production systems.
  • Plan & Execute: Turn vague requirements into concrete technical plans, trade-offs, and execution.
  • Own Production: Own services after launch: reliability, observability, performance, and incident follow-through.
  • Instrument Everything: Instrument what you ship and use production signal to iterate, not just to keep the lights on.
  • Design Well: Make sound decisions around system boundaries, data models, interfaces, and scaling paths.
  • Collaborate: Work closely with product, frontend, and platform engineers to deliver end-to-end outcomes.
  • Improve Engineering: Improve engineering leverage with AI tooling, automation, and internal workflows rather than using AI as a gimmick.
  • Raise the Bar: Raise the quality bar through code review, design review, and pragmatic technical leadership.
What Strong Performance Looks Like
  • You reliably move important backend work forward without waiting to be tightly managed.
  • Your systems are easier to operate and easier to change because of your design decisions.
  • You make smart trade-offs to unblock shipping—and you stand by those decisions.
  • You keep raising the bar on engineering excellence for yourself and everyone else.
What We Are Looking For
  • Backend Experience: Strong senior-level backend engineering experience in production systems.
  • Python: Strong Python skills and the ability to design clean, maintainable backend code.
  • Systems Thinking: Good distributed systems judgment: concurrency, failure handling, data consistency, async work, and service boundaries.
  • Cloud Infrastructure: Hands-on experience with cloud infrastructure such as AWS, GCP, or Azure.
  • Databases: Comfort with database schema design and performance tuning for real-time and high throughput scenarios.
  • Security: A security-conscious approach to engineering: you build for enterprise-grade requirements, handle sensitive data carefully, and think about the security implications of the systems and AI workflows you ship.
  • Ownership: Ability to go from problem statement to design to production rollout with real ownership.
  • Communication: Clear written and verbal communication. You can explain systems, trade-offs, and incidents without hiding behind jargon.
  • AI-Native: AI-native working style. You already use AI tools in your daily engineering workflow, and you're excited to improve how the team builds, not just your own output: better tooling, workflows, and engineering leverage.
Strong Plus
  • Experience building agentic systems: AI agents, tool-calling, orchestration, retrieval, or LLM-backed infrastructure in production.
  • Working knowledge of TypeScript or the ability to contribute across the stack when needed.
  • Experience shaping technical direction for other engineers, even without formal management responsibility.
How We Evaluate Fit

We care more about ownership, systems judgment, and learning velocity than a perfect keyword match to our stack. If you are the kind of engineer who can take a messy problem and turn it into a strong production system, we want to talk.

Why Join Shelf
  • Build the future of enterprise AI: Shelf is creating the core infrastructure that enables enterprises to deploy agentic AI securely, reliably, and at scale.
  • Join a proven team: Our leadership combines deep AI expertise with experience building and scaling category-leading enterprise software companies.
  • Work with customers who love the product: Leading enterprises trust Shelf for its innovation, reliability, and measurable business impact.
  • Backed by world-class investors: We've raised more than $60 million from investors including Insight Partners, Tiger Global, Base10 Partners, and others.
  • Make an outsized impact: Join during a high-growth stage with meaningful ownership, direct access to leadership, and the opportunity to help shape the future of Shelf.
Compensation & Benefits
  • B2B contract.
  • Company Stock Options.
  • Hardware: MacBook Pro.
  • Modern technical stack. Develop open-source software.
  • GitHub Copilot subscription.
  • A strong AI-native engineering environment with modern tools and room to experiment, including Claude Code, OpenAI Codex, and GitHub Copilot.
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