Acerca de Pavol
- data analysis using stream-based machine learning approaches
- template solutions for monitoring of Kafka data streams and application of prediction approaches in Dockerized environment
- application of Deep Learning data imputation techniques
- adjustments to NLP libraries used by Wikimedia ORES team to predict/classify the quality of articles and for CJK tokenization
- utilization of PySpark for data mining in data streams
- server administration
- dockerized environment
- using Azure DevOps in the enterprise environment
- machine learning pipeline/lifecycle
- configuration of routers/switches and loadbalancers in LAN/WAN
Eslovaco
Bilingüe o nativo
Inglés
Competencia profesional completa
Español
Nociones
Checo
Bilingüe o nativo
Experiencia
- Other previous positions(i) Data Scientist (O2 Telefonica - Barcelona, ES); (ii) Data Scientist (AIT - Vienna, AU); (iii) Network Engineer (VSHosting - Prague, CZ); (iv) Network Consulting Engineer (Verizon - Prague, CZ); (v) Senior System Engineer (AT&T - Bratislava, SK); (vi) HP Radia Specialist / (vii) HP Monitoring Support Specialist / (viii) IT VoIP support specialist (Soitron - Bratislava, SK)TELECOMUNICACIONESagosto de 2007 - noviembre de 2018 (11 años y 4 meses)
- Czech Technical UniversityPrincipal/Co-investigatorTELECOMUNICACIONESnoviembre de 2013 - diciembre de 2020 (7 años y 2 meses)Praga, ChequiaApplication of ML methods for pattern recognition in diverse datasets, e.g. (i) active Cloud latency measurements, (ii) NW traces, (iii) IoT logs.List of projects :• Practical Privacy-Preserving Data Collection and Utilization using Provable Cryptographic Tools• Privacy Protection and Machine Learning Utilization of IoT Data in Cloud• Cloud Performance Analysis and Improvement• Smart-home IoT and Cloud Telemetry Datamining• Methods Enhancing Work with Cloud Data
- NIIData Scientist (fixed-term 6 months)TELECOMUNICACIONESmarzo de 2019 - septiembre de 2019 (6 meses)Tokio, JapónApplication of the unsupervised machine learning (ML) approaches to network (NW) traces (MAWI, Darknet). Generalization and improvement of the hierarchical density-based clustering approach to NW measurements interpretation proposed during AIT Vienna internship. Improvement of PySpark ML scripts running in distributed UX server environment. Results were summarized in conference papers
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Formación
- MastersSlovak Technical University in Bratislava2009Telecommunications
- PhDCzech Technical University in PragueTelcommunications
Certificados
- CCNACisco2020
- CCDACisco2020