Data Scientist
Viaduct
| Company | Viaduct |
| Category | Data & Analytics |
| Location | Slovenia |
| Remote | On-site (inferred) |
| Employment | Not stated |
| Level | Not stated |
| Salary | Not stated by the employer |
| Posted | 19 May 2026 |
| Last verified | 30 Jul 2026 |
| Source | Employer career page (greenhouse) |
Description
About Us
At Viaduct, we are developing an end-to-end AI-powered machine learning platform to empower industry to build safer, more intelligent, and reliable assets. Our platform increases the accessibility and actionability of connected asset data for industry, their partners and end-customers. We are a diverse team motivated to solve the hardest problems in the asset performance management sphere.
Who You Are
You are motivated by real-world problems and enjoy working with stakeholders to solve their biggest challenges. You are excited by opportunities to deliver value by turning data science into actionable business and technology insights.
Expected Skills
Strong machine learning and statistical analysis skills
Comfort working side-by-side with customers
Strong presentation skills communicating technical concepts to non-technical audiences
Familiarity with working on datasets that don't fit within a single machine
Self-motivated and able to work independently
Excellent spoken and written communication skills
Minimum of advanced degree (M.S.) in a data science-related field, or 2+ years of experience in a related field
Proficiency in Python and SQL
Hands-on experience with ML libraries (scikit-learn, xgboost, MLlib, etc.)
Familiarity with deep learning libraries (Tensorflow, Keras, PyTorch, etc.)
Working knowledge of distributed/cloud compute platforms (AWS, Hive, Clickhouse, Argo-workflows, etc.)
Developing agentic workflows
Experience deploying and maintaining data pipelines and DS-backed product features
About the Role
Day 5
Learn about Viaduct’s history and mission
Get to know every team member
Set up your development environment
Understand Viaduct’s data pipelines and data science workflow
Learn about our current partners, their biggest needs, and the gaps they're looking for us to fill
Day 30
Present your first deliverables internally
Scope-out and propose improvements to our products
Deploy improvements to our ML/Agentic pipelines
Present your work at our weekly team meetings
Day 90
Be a thought leader on the data science team
Deploy world-class DS-based products and services
Collaborate with engineers on improvements to data science tooling
Present your models and relevant metrics to stakeholders
Security and Privacy Responsibilities
Follow our policy and procedure documents related to security and privacy
Follow the guidelines in the Employee Handbook
Participate in new hire and annual training for security and privacy
Treat data security and privacy as one of your primary job responsibilities
Report Security Incidents you discover as bugs
Get approval from the Security Team before adding new 3rd party software to our codebase
Explicitly consider security implications when doing PR reviews
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