Senior Operations Research Engineer (Applied AI, B2B SaaS)

aspaara AG

Zürich

Vor Ort

CHF 120.000 - 180.000

Vollzeit

vor 42 Stunden
Sei unter den ersten Bewerbenden
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Zusammenfassung

aspaara AG is hiring a Senior Operations Research Engineer (Applied AI, B2B SaaS) to advance AI capabilities for automotive aftersales operations. You will design predictive models, optimise scheduling, and build end-to-end solutions powered by machine learning.

The role requires a strong background in ML, time-series and constraint-based optimization, with Python, PyTorch, and modern MLOps tools. Join a fast-growing team shaping data-driven decisions across Europe.

Qualifikationen

  • Advanced degree required in a technical field (MS/PhD).
  • Proven experience with ML models for time-series/tabular data.
  • Strong Python and data-science tooling proficiency.

Aufgaben

  • Design and deploy AI models for prediction and decision-making on domain data.
  • Advance scheduling and resource optimisation with multi-objective, constraints, and re-planning.
  • Build end-to-end models that learn from real data to improve planning accuracy.
  • Own the full AI lifecycle: data analysis, feature engineering, model development, evaluation and monitoring.
  • Translate business problems into formal models and measurable outcomes.

Kenntnisse

Machine learning
Time series
Tabular data
Deep learning (PyTorch)
Python

Ausbildung

Master’s/PhD in CS/Math/Physics or related field

Tools

PyTorch
MLflow
Docker
Kubernetes
Pandas
scikit-learn

Jobbeschreibung

We are a fast-growing B2B SaaS company building an AI-driven platform to transform automotive aftersales operations.

Our product helps bodyshops, dealer groups, and multi-site operators optimize workflows, improve efficiency, and make better decisions through data. Using digital twin technology and real-time optimization, we uncover operational improvements that are often hidden in day-to-day processes. In practice, this means helping workshops plan work more accurately, assign jobs to the right people, and predict when work will be completed. At the core of our platform is our AI: machine learning models and optimization algorithms that power intelligent predictions and decisions in complex operational environments.

With customers across multiple European markets and strong early traction, we are now looking to hire a Senior Operations Research Engineer (Applied AI, B2B SaaS) to further strengthen our product and AI capabilities.

Do you want to help shape our award-winning artificial intelligence of tomorrow, which is already improving the working lives of thousands of people across eight European countries today? Become an integral part of our established yet dynamic startup team.

Tasks

  • Design and deploy AI models for prediction and decision-making on domain-specific operational data
  • Advance and extend scheduling and resource optimisation, including multi-objective optimisation, constraint handling, and stable re-planning
  • Build end-to-end models that learn from real operational data and improve planning accuracy over time
  • Own the full AI lifecycle: data analysis, feature engineering, model development, evaluation, and monitoringTranslate business problems into formal models and measurable outcomes

Examples of What You’ll Build

  • Capacity planning algorithms that account for skills, time buffers, cool-down periods, and space constraints
  • Intelligent job-to-talent matching with dynamic weighting for in-progress vs. new projects
  • Automated project creation from structured and unstructured operational inputs (e.g. PDFs, free text)

Requirements

  • Master’s or PhD in Computer Science, Mathematics, Physics or a related field
  • Several years of experience in machine learning, particularly with tabular data and time series
  • Strong knowledge of at least one deep learning framework (PyTorch is preferred)
  • Experience designing optimisation algorithms and heuristics for complex, constrained problems
  • Proficient in Python and the data science ecosystem (e.g. pandas, scikit-learn)
  • Experience with ML experiment tracking and model deployment (e.g. MLflow, Docker, Kubernetes)
  • A self-driven, solution-oriented mindset: you don’t just build models, you understand the business problem behind them

Nice to Have

Beyond our core artificial intelligence, we are exploring additional AI capabilities that will flow into the product over time. Experience in this area is not required, but a plus:

  • Experience with LLMs or agentic systems (e.g. RAG, information extraction from unstructured data, API-based workflows)
  • Creative freedom in a young, technically ambitious team
  • Direct impact of your work on the product and our customers
  • A modern tech stack and a culture that encourages experimentation
  • A real-world, domain-rich problem space, not another generic SaaS
  • End-to-end ownership of AI features, from data exploration to production deployment

If you want to work on meaningful AI problems, take ownership, and see your work used in the real world, we'd love to hear from you.

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