Machine Learning Engineer (Java/Scala & Big Data)
We are looking for a Mid-level Machine Learning Engineer to help build and enhance an advanced, real-time monitoring and security platform for a global financial ecosystem. This system leverages cutting-edge AI and machine learning models to process massive, high-throughput data streams, proactively identifying anomalies and mitigating risks 24/7. Your work will directly contribute to the safety, stability, and intelligence of a massive transactional network operating on a global scale.
Essential functions
Drive the end-to-end development effort to deliver high-quality data and ML solutions that meet business requirements and architectural vision.
Design, create, and manage large-scale data pipelines capable of handling complex, high-volume, multi-dimensional data and deploying machine learning models.
Deliver core capabilities required for creating and optimizing real-time streaming data pipelines.
Optimize system performance to ensure low-latency querying and high-throughput data ingestion.
Integrate complex data solutions into existing enterprise systems in close collaboration with cross-functional engineering teams.
Produce strict project deliverables, including system design, codebase, test cases/results, and comprehensive user documentation.
Qualifications
Good hands-on coding expertise in Java, Scala, and SQL (including PL/SQL).
Solid hands-on experience working with Snowflake.
Proven knowledge of design, architecture, and development using Big Data technologies for large data volumes and transaction systems (Hadoop, Spark, Hive, Kafka).
Deep coding skills and operational experience with real-time streaming platforms (Apache Flink, Spark Streaming, Apache Pinot).
Strong decision-making capabilities, effective teamwork, and active listening skills.
Would be a plus
Proficiency in Python for machine learning and data engineering tasks.
Proven expertise utilizing NoSQL databases (ClickHouse, MongoDB, Cassandra, HBase, Redis).
Hands-on experience with scheduling and orchestration tools (Apache Airflow, Control-M).
Practical experience with containerization and orchestration (Docker, Kubernetes).
Familiarity with Agile development frameworks and building/maintaining CI/CD pipelines.
We offer
- Opportunity to work on bleeding-edge projects
- Work with a highly motivated and dedicated team
- Competitive salary
- Flexible schedule
- Benefits package - medical insurance, sports
- Corporate social events
- Professional development opportunities
- Well-equipped office
About us
Grid Dynamics (NASDAQ: GDYN) is a leading provider of technology consulting, platform and product engineering, AI, and advanced analytics services. Fusing technical vision with business acumen, we solve the most pressing technical challenges and enable positive business outcomes for enterprise companies undergoing business transformation. A key differentiator for Grid Dynamics is our 8 years of experience and leadership in enterprise AI, supported by profound expertise and ongoing investment in data, analytics, cloud & DevOps, application modernization and customer experience. Founded in 2006, Grid Dynamics is headquartered in Silicon Valley with offices across the Americas, Europe, and India.Apply to the position
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Grid Dynamics is an equal opportunity employer. We are committed to creating an inclusive environment for all employees during their employment and for all candidates during the application process.
All qualified applicants will receive consideration for employment without regard to, and will not be discriminated against based on, age, race, gender, color, religion, national origin, sexual orientation, gender identity, veteran status, disability or any other protected category. All employment is decided on the basis of qualifications, merit, and business need.
