Senior ML Data Scientist - Wireless People Sensing

Startupvalleys

Etoy

Vor Ort

CHF 120.000 - 180.000

Vollzeit

Vor 8 Tagen
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Zusammenfassung

Algorized, a VC-funded Silicon Valley deep-tech company with Swiss roots, seeks a Senior Data Scientist to turn complex sensing challenges into robust products. You will work across data science, signal processing, and product development in an on-site role based in Etoy, Switzerland, contributing to scalable, real-time people-sensing solutions.

You will design ML models, build foundational architectures, and collaborate with software and MLOps teams to move research into production.

Qualifikationen

  • PhD in Data Science, CS, Wireless Communication, Electrical Engineering, Applied Mathematics, Physics, or related quantitative field.
  • At least 3 years of hands-on experience developing ML/data-science solutions for real-world applications.
  • Proven expertise in data science and ML with sensor/time-series data.
  • Strong knowledge of signal-processing principles and practical experience with spectral analysis, filtering, estimation, detection, tracking, or sensor fusion.
  • Strong understanding of ML fundamentals: model development, evaluation, optimization, and generalization.
  • Strong Python skills and experience with PyTorch, scikit-learn, NumPy, and SciPy.
  • Ability to take ownership of open-ended technical problems and move from exploration to validated solutions.
  • Excellent collaboration and communication skills for solving challenging people-sensing problems.

Aufgaben

  • Design, develop, and improve ML models and algorithms for wireless people sensing using radar and other signals.
  • Develop foundational models that support multiple people-sensing tasks, environments, and sensor configurations.
  • Create signal-processing, ML, and deep-learning methods to convert wireless signals into robust outputs.
  • Design architectures and learning approaches capturing spatial and temporal patterns in sensor data.
  • Plan experiments, define evaluation methodologies, and analyze model behavior and generalization.
  • Evaluate advances in time-series and representation learning to boost accuracy and robustness.
  • Collaborate with software engineers and MLOps on infrastructure development.
  • Mentor junior team members and contribute to data-science practices.

Kenntnisse

Python
PyTorch
scikit-learn
NumPy
SciPy
Time-series
Signal processing
Model development
Data science
Collaboration

Ausbildung

PhD in Data Science, CS or related field

Tools

PyTorch
scikit-learn
NumPy
SciPy
Time-series analysis

Jobbeschreibung

Join Us in Building the Nervous System for Physical AI

Algorized is a VC-funded Silicon Valley deep-tech company with Swiss roots. We build edge-AI models that give robots real-time awareness of people using existing wireless sensors, enabling safer human–machine collaboration.

As we continue to scale, we are looking for a Senior Data Scientist who is passionate about innovation, applied research, and turning complex sensing challenges into robust products. If you thrive in a dynamic startup environment, take ownership, and enjoy working across data science, signal processing, and product development, we would love to meet you.

This is an on-site position based in Etoy, Switzerland. Fully remote arrangements are not available.

RESPONSIBILITIES
  • Design, develop, and improve machine-learning models and algorithms for wireless people sensing using radar and other sensor signals.
  • Play a key role in developing foundational models that can support multiple people-sensing tasks, environments, and sensor configurations.
  • Develop signal-processing, machine-learning, and deep-learning methods that transform wireless sensor signals into accurate and robust people-sensing outputs.
  • Design model architectures and learning approaches that capture spatial and temporal patterns in wireless sensor data.
  • Design experiments, define evaluation methodologies, and analyze model behavior, limitations, and generalization.
  • Evaluate and adapt relevant advances in time-series and representation learning to improve model accuracy, robustness, and generalization across environments and sensor configurations.
  • Collaborate cross-functionally with software engineers and MLOps on infrastructure development.
  • Mentor junior team members and contribute to the company's technical direction and data-science practices.
QUALIFICATIONS
Minimum Requirements
  • PhD in Data Science, Computer Science, Wireless Communication, Electrical Engineering, Applied Mathematics, Physics, or a related quantitative field.
  • At least 3 years of hands-on experience developing machine-learning or data-science solutions for real-world applications.
  • Proven expertise in data science and machine learning, with experience applying statistical and learning-based methods to sensor or time-series data.
  • Strong knowledge of signal-processing principles and practical experience applying methods such as spectral analysis, filtering, estimation, detection, tracking, or sensor fusion.
  • Strong understanding of machine-learning fundamentals, including model development, evaluation, optimization, and generalization.
  • Strong Python skills and practical experience with frameworks such as PyTorch, scikit-learn, NumPy, and SciPy.
  • Ability to take ownership of open-ended technical problems and move effectively from exploration to validated solutions.
  • Excellent collaboration and communication skills, with genuine enthusiasm for solving challenging people-sensing problems.
Preferred Requirements
  • Experience with radar, RF sensing, LiDAR, computer vision, acoustics, or other sensing modalities.
  • Experience designing experiments and working with complex, noisy, or imperfect real-world data.
  • Familiarity with self-supervised learning, representation learning, multimodal models, or foundation-model development.
  • Experience with 3D positioning, occupancy sensing, human activity recognition, tracking systems, or vital-sign estimation.
  • Familiarity with edge-AI constraints and the trade-offs involved in moving models from research into production.
  • Experience collaborating across data science, embedded, software, and product teams.
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