
Data Scientist
Intellectsoft is a software development company delivering innovative solutions since 2007. We operate across North America, Latin America, the Nordic region, the UK, and Europe.We specialize in industries like Fintech, Healthcare, EdTech, Construction, Hospitality, and more, partnering with startups, mid-sized businesses, and Fortune 500 companies to drive growth and scalability. Our clients include Jaguar Motors, Universal Pictures, Harley-Davidson, Qualcomm, and London Stock Exchange.Together, our team delivers solutions that make a difference. Learn more at www.intellectsoft.net
You'll be part of a dynamic team developing a cutting-edge Analytical Platform for one of the largest resorts and casino companies in Southeast Asia. This mission-critical application is designed to empower client stakeholders with deep insights into customer behavior, enabling data-driven decision-making and strategic business development.
Requirements
Bachelor’s or Master’s degree in Computer Science, Statistics, Mathematics, Engineering, or a related field
ML/Analytics Experience: 3+ years in data science, machine learning, or advanced analytics roles, building models and delivering data-driven insights
Programming Skills: Proficiency in Python (NumPy, pandas, scikit-learn), strong SQL knowledge, and familiarity with PySpark or other distributed computing frameworks
Big Data & Streaming: Experience with Apache Spark, Kafka, or similar technologies for large-scale data processing and real-time analytics
MLOps & Model Deployment: Familiarity with MLflow, containerization (Docker), and orchestrators (Airflow, Kubernetes) for automated model lifecycle management
Data Warehousing / Lakehouse: Understanding of data lake architectures (Delta Lake, Iceberg, Hudi), partitioning, ACID transactions, and schema evolution
Analytical Mindset: Strong understanding of statistical methods, hypothesis testing, data visualization, and feature engineering best practices
Upper-Intermediate level of English
Nice to have skills:
Cloud Services: AWS (EMR, S3, Glue, SageMaker), Azure, or GCP for analytics and ML at scale
Deep Learning: Hands-on experience with PyTorch, TensorFlow, or advanced NLP frameworks (Hugging Face)
Data Catalog & Governance: Experience with DataHub, Apache Atlas, Collibra, or similar metadata management solutions
Real-time Analytics: Exposure to Apache Flink, Spark Structured Streaming, or AWS Kinesis for event-driven pipelines
Domain Knowledge: Prior exposure to gaming, loyalty/rewards analytics is a plus
Responsibilities:
Model Development & Experimentation
Design, prototype, and validate predictive/statistical models using Python (NumPy, pandas, scikit-learn), PySpark, MLlib, or deep learning frameworks (PyTorch/TensorFlow)
Continuously iterate on feature engineering strategies with data from streaming (Kafka) and batch (NiFi + Airflow) pipelines
Data Pipeline Integration
Collaborate with Data Engineers to ensure models consume and output data seamlessly into/from Delta Lake / Iceberg (in S3 or HDFS) and can handle both real-time and batch feeds
Contribute to the design of scalable, fault-tolerant data flows that handle high-volume, low-latency data from operational gaming systems
MLOps & Model Lifecycle Management
Track model experiments using MLflow (or similar) for reproducibility, versioning, and performance monitoring
Work with Airflow (or similar orchestrator) to schedule training, re-training, and automated model evaluation
Deploy and monitor models via Models as a Service solutions (e.g., FastAPI, TorchServe, SageMaker) ensuring robust logging, alerting, and rollback procedures
Advanced Analytics & Domain Insight
Perform exploratory data analysis and statistical tests to uncover insights for dynamic pricing, customer segmentation, fraud detection, or game optimization
Partner with business stakeholders (marketing, operations, finance) to translate analytical findings into tangible action items or product features
Data Governance & Quality
Adhere to data lineage and cataloging practices using tools like DataHub, Apache Atlas, or AWS Glue to ensure compliance, traceability, and data quality
Collaborate with governance teams to define and enforce security, privacy, and compliance measures (e.g., handling PII, region-specific regulatory requirements)
Continuous Improvement & Innovation
Stay up-to-date on emerging ML trends (e.g., reinforcement learning, large language models, real-time analytics)
Evaluate open-source and cloud-native ML solutions (e.g., Kubeflow, SageMaker) to optimize cost, performance, and operational overhead
Benefits
35 paid absence days per year for work-life balance
Up to 15 unused absence days can be add to income after 12 month of cooperation
Health insurance
Depreciation coverage for personal laptop usage for project needs
Udemy courses of your choice
English courses with native-speaker
Regular soft-skills trainings
Excellence Сenters meetups
Online/offline team-buildings
Increase your chances of landing your dream career.
About the company
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