Applied AI Engineer -Croatia(Remote)

Posted 3 Hours Ago
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26 Locations
Remote
Mid level
Cloud • Information Technology • Professional Services • Software • Consulting
DoiT integrates advanced technology with human intelligence to ensure your cloud infrastructure is fully optimized.
The Role
Build and operate a composable, event-driven internal platform: design and ship backend services (Python/Go), frontend admin tools (TypeScript/React), integrations with SaaS and cloud APIs, BPMN/workflow orchestration, and LLM/AI tooling across the development lifecycle while owning production reliability, security, and observability.
Summary Generated by Built In

Location
As an AI Applied Engineer, you will be part of the Business Systems Engineering (BSE) division at DoiT - the division that builds the platform the rest of the company runs on. You'll join Fusion, our platform engineering team. This role is based remotely in Eastern Europe or Indonesia.

Who We Are
DoiT is a global technology company that works with cloud-driven organizations to leverage the cloud to drive business growth and innovation. We combine data, technology, and human expertise to ensure our customers are operating in a well-architected and scalable state - from planning to production.
Delivering DoiT Cloud Intelligence, the only solution that integrates advanced technology with human intelligence, we help our customers solve complex multi-cloud problems and drive efficiency.
With decades of multicloud experience, we have specializations in Kubernetes, GenAI, CloudOps, and more. An award-winning strategic partner of AWS, Google Cloud, Microsoft Azure and Ingram Micro, we work alongside more than 4,000 customers worldwide.

The Opportunity
DoiT runs on dozens of SaaS platforms spanning CRM, ERP, support, marketing, and billing - and the list keeps growing. Connecting them one integration at a time doesn't scale: point-to-point links multiply as the square of the systems, business logic gets trapped inside vendor scripts, and critical processes go dark the moment they break. Fusion is building the alternative.
That alternative - internally, Project Babylon - is a composable, event-driven platform: Packaged Business Capabilities that expose each domain (Customer, Billing, Support) as a clean, versioned API; a process orchestrator that runs business workflows as named, observable BPMN flows; and a canonical event log underneath. It turns a sprawl of vendor systems into a coherent foundation the whole company builds on. And because every capability is a stable, semantic API with narrow permissions and a full audit trail, AI agents become first-class consumers of the platform - not bolted-on scripts.
This is a high-ownership engineering role for builders who want real distributed-systems problems - event-driven architecture, reconciliation, idempotency, observability - and want to see their work land across the business within weeks. You'll ship end to end across a modern stack - Python and Go services on GCP Cloud Run, TypeScript/React surfaces, Pub/Sub, and BPMN orchestration - from shaping the brief through production operation. AI is core to how we work in two directions: we use Claude Code across the lifecycle (spec, build, review) so your time goes to design and judgment rather than boilerplate, and we build the platform so that agents can operate it safely. Engineering quality, correctness, and ownership stay firmly with you.
The work is concrete and varied - reconciling marketing leads into the CRM, giving Finance real-time forecasting instead of spreadsheet exports, turning a quarterly access audit into an observable flow that produces its own evidence. You'll have real room to shape how DoiT builds and operates its internal systems as we scale.
Responsibilities

  • Own internal tools end to end - from understanding the operational problem through design, implementation, deployment, and iteration.
  • Build across the stack as the product requires: Python/Go services on Cloud Run, TypeScript web apps and internal admin tools, event-driven integrations on Pub/Sub, and cloud infrastructure on GCP.
  • Integrate with third-party SaaS platforms and cloud APIs - handling REST, webhooks, OAuth, and event-driven patterns, including failures, retries, and schema drift.
  • Build and maintain workflow automation and business process orchestration as named, observable flows rather than logic buried in vendor scripts.
  • Use AI tooling effectively across the development lifecycle - spec, code, and review - directing Claude as a coding collaborator while owning the output.
  • Review AI-generated code before it ships for correctness, security, and type safety.
  • Operate what you ship: monitoring, reliability, cost, and failure modes in production.
  • Contribute to shared engineering standards, playbooks, and internal tooling.
    Qualifications
    Typically 3-9 years of professional software engineering experience. Experience is a signal, not a gate - we care more about what you've shipped and how you think.

    Must have
    :
  • End-to-end product delivery: you have shipped and operated production software with real users - not just features in isolation, but complete products from brief to deployment.
  • Backend engineering: proficient in Python or Go (or both); you can own a service from design to Cloud Run deployment.
  • Frontend engineering: proficient in TypeScript / React; comfortable building UI-complete features such as internal dashboards or admin tools.
  • Cloud infrastructure: you deploy and operate on GCP and understand IAM, secrets management, Cloud Run, and deployment pipelines.
  • API and systems integration: you have connected multiple third-party platforms in production - REST APIs, webhooks, OAuth flows, event-driven patterns - and know how to handle failures, retries, and schema drift.
  • Security baseline: no hardcoded credentials; you use secrets management (SOPS, Secret Manager, or equivalent); no PII in logs; solid AppSec hygiene.
  • AI in the development lifecycle: you use AI tooling (Claude Code or equivalent) actively across the full SDLC, review AI-generated output critically for correctness, security, and type safety, and can direct AI on multi-step implementation tasks while owning the result.

Nice to have:

  • Workflow automation platforms (n8n, Zapier, or similar).
  • Business process orchestration (Camunda, Temporal, or similar BPMN/workflow engines).
  • Systems-level programming: async runtimes, IPC, process lifecycle, protocol clients.
  • Graph algorithms (cycle detection, topological sort) or graph databases (Neo4j, Cypher).
  • Rust / Tauri for desktop application development.
  • Infrastructure as code with Terraform.
  • LLM API integration: building features that call LLM APIs, prompt design, tool use.
  • AI safety and compliance: data boundaries, output risk, regulatory awareness.
    Are you a Do'er?
    Be your truest self. Work on your terms. Make a difference.
    We are home to a global team of incredible talent who work remotely and have the flexibility to have a schedule that balances your work and home life. We embrace and support leveling up your skills professionally and personally.
    What does being a Do'er mean? We're all about being entrepreneurial, pursuing knowledge and having fun! Click here to learn more about our core values.

Sounds too good to be true? Check out our Glassdoor Page.
We thought so too, but we're here and happy we hit that 'apply' button.

  • Unlimited PTO
  • Flexible Working Options
  • Health Insurance
  • Parental Leave
  • Employee Stock Option Plan
  • Home Office Allowance
  • Professional Development Stipend
  • Peer Recognition Program

Many Do'ers, One Team
DoiT unites as Many Do'ers, One Team, where diversity is more than a goal - it's our strength. We actively cultivate an inclusive, equitable workplace, recognizing that each unique perspective enhances our innovation. By celebrating differences, we create an environment where every individual feels valued, contributing to our collective success.

Skills Required

  • 3-9 years professional software engineering experience
  • End-to-end product delivery: shipped and operated production software
  • Backend engineering proficiency in Python or Go; ownership of services to Cloud Run
  • Frontend engineering proficiency in TypeScript and React for internal dashboards/admin tools
  • Experience deploying and operating on GCP, including IAM, secrets management, Cloud Run, and deployment pipelines
  • API and systems integration experience: REST, webhooks, OAuth, event-driven patterns, failure/retry handling, schema drift
  • Security baseline: no hardcoded credentials, use of secrets management, no PII in logs, solid AppSec hygiene
  • Active use of AI tooling across SDLC (e.g., Claude Code) and review of AI-generated code for correctness, security, and type safety
  • Operate what you ship: monitoring, reliability, cost, and production failure-mode handling
  • Experience with workflow automation or business process orchestration (nice to have: n8n, Zapier, Camunda, Temporal)
  • Experience with infrastructure as code (Terraform) and LLM API integration, prompt design (nice to have)
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The Company
HQ: San Francisco, CA
604 Employees
Year Founded: 2011

What We Do

DoiT is a global technology company that works with cloud-driven organizations to leverage the cloud to drive business growth and innovation. We combine data, technology, and human expertise to ensure you’re operating in a well-architected and scalable state - from planning to production. Delivering DoiT Cloud Intelligence, the only solution that integrates advanced technology with human intelligence, we help you solve complex multicloud problems and drive efficiency. With decades of multicloud experience, we have specializations in Kubernetes, GenAI, CloudOps, and more. An award-winning strategic partner of AWS, Google Cloud, and Microsoft Azure, we work alongside more than 4,000 customers worldwide.

Why Work With Us

We are a remote-first company navigating hypergrowth as we hire the best talent around the world to solve the biggest challenges the multicloud ecosystem has to offer. We are tightly aligned but loosely coupled with a massive degree of autonomy and trust as we focus more on successful outcomes and less on "time in the office".

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