Research Data Scientist (Wearable Accelerometry & Step Detection)
Budget: $300.0
FIXED /
⭐ 5.00 (12)
Spain
python, time-series-analysis
We are looking for a research-oriented data scientist to benchmark algorithms that convert raw 1-, 2-, and 3-axis accelerometer data into step counts. The project includes:
(1) a literature review of industrial and scientific approaches and open datasets,
(2) selection of suitable open-access accelerometry datasets,
(3) Python implementation and parameter grid search of representative algorithms,
(4) quantitative evaluation of accuracy versus reference step counts.
The study should:
- compare wrist- and hip-worn sensors,
- assess the impact of reducing from 3-axis to 2-axis and 1-axis data,
- summarize the trade-offs between accuracy, robustness, and computational complexity.
Deliverables include well-documented Python code, a reproducible analysis notebook, publication-quality figures and tables, and a concise technical report suitable as the basis for a scientific manuscript.
Time: 1 week
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