We’re looking for a Data Scientist to turn our network data into a competitive advantage. You’ll work directly with terabytes of telecom signaling, session, and usage data to build models that improve network selection, detect anomalies, optimize cost-per-gigabyte, and surface insights that shape product and commercial strategy. This is a high-impact role sitting at the intersection of ML, telecom engineering, and business decision-making.
What You’ll Do:
- Design and deploy machine learning models on network data — including network selection optimization, churn and usage prediction, fraud and anomaly detection, and QoS/QoE forecasting.
- Analyze CDRs, signaling events (Diameter, GTP, SIP), session logs, and radio-level metrics to identify performance issues, cost drivers, and growth opportunities.
- Partner with the Network Operations and Product teams to translate raw telemetry into actionable signals — e.g., which carrier to steer traffic to in a given country at a given hour.
- Build forecasting and segmentation models that inform pricing, capacity planning, and customer lifecycle strategy.
- Own analyses end-to-end: framing the business question, exploring the data, building the model, validating it, and communicating findings to both technical and executive audiences.
- Define and track KPIs for network quality, customer experience, and commercial performance, and build dashboards that make those metrics visible across the company.
- Mentor junior data scientists and analysts, and help raise the bar on data science practices, code quality, and experimentation rigor.
- Requirements:
- 5+ years of hands-on data science experience, ideally with exposure to telecom, networking, IoT, or large-scale event/log data.
- Strong applied ML background: classification, regression, time-series forecasting, anomaly detection, clustering, and a working understanding of when to use what.
- Expert SQL and strong Python (pandas, scikit-learn, PyTorch, or TensorFlow). Comfort with big-data tooling such as AWS Lakehouse, Redshift, and others.
- Track record of shipping models into production and measuring their business impact, not just building notebooks.
- Strong analytical storytelling — you can take a noisy dataset and turn it into a clear narrative for a non-technical stakeholder.
- Telecom and networking concepts — cellular architecture (2G/3G/4G/5G), roaming, IMSI/IMEI, HLR/HSS, signaling protocols, QoS metrics. If you don’t have this yet but have worked on similarly complex network/log data, we’d still like to talk.
- Excellent written and spoken English.
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Are you interested in this position?
Apply by clicking on the “Apply Now” button below!
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