Data Scientist

UARROW PTE. LTD.

Singapore

On-site

SGD 90,000 - 130,000

Full time

42 hours ago
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Job summary

UARROW PTE. LTD. in Singapore is seeking a highly skilled Data Engineer to design, build and maintain scalable data pipelines for large-scale datasets.

You will work with Python, PySpark, Spark SQL and Scala to deliver reliable batch and real-time data processing solutions. Collaborating with data scientists, software engineers and analysts, you will design data lakes and warehouses, implement cloud-native data platforms on AWS/Azure, and apply CI/CD practices with Docker, Kubernetes and

Qualifications

  • Strong programming and SQL skills.
  • Experience with large-scale enterprise data platforms.
  • Proven ability to build and maintain data pipelines.

Responsibilities

  • Design, develop and maintain scalable ETL/ELT data pipelines for large datasets.
  • Develop high-performance data processing using Python, PySpark, Spark SQL and Scala.
  • Build batch and real-time pipelines using Kafka, Kinesis, Spark Streaming, AWS Glue and Airflow.
  • Develop data ingestion frameworks across RDBMS, APIs, files and cloud storage.

Skills

Python
SQL
Spark
Kafka
Airflow
Docker
Kubernetes
ETL/ELT

Education

Bachelor's or Master's degree in Computer Science / IT

Tools

Databricks
Hadoop
Hive
Cloudera
Snowflake
Redis

Job description

Key Responsibilities
  • Design, develop and maintain scalable ETL/ELT data pipelines for large-volume structured and unstructured datasets.
  • Develop high-performance data processing solutions using Python, PySpark, Apache Spark, Spark SQL and Scala.
  • Build batch and real-time data pipelines using Kafka, Kinesis, Spark Streaming, AWS Glue and Airflow.
  • Develop data ingestion frameworks integrating RDBMS, APIs, files, cloud storage and streaming platforms.
  • Design and implement data lakes, data warehouses and cloud-based data processing platforms.
  • Work with Databricks, Hadoop, Hive, Cloudera, Presto and Snowflake for large-scale data processing and analytics.
  • Perform data modelling, data transformation, data quality, query optimisation and performance tuning.
  • Develop and optimise SQL solutions across Oracle, SQL Server, PostgreSQL, Teradata, MongoDB and cloud databases.
  • Design and implement data migration solutions involving large-scale enterprise datasets.
  • Develop and support real-time and batch processing architectures for enterprise applications.
  • Integrate data platforms with REST APIs, GraphQL and enterprise applications.
  • Implement CI/CD and DevOps practices using Jenkins, Git, Docker, Kubernetes and OpenShift.
  • Develop cloud-native data solutions using AWS and Azure, including S3, Glue, EMR, Redshift, Kinesis, Lambda, RDS and DynamoDB.
  • Develop AI/GenAI-enabled data solutions involving LLMs, NLP, RAG, Agentic AI and vector databases.
  • Integrate LLM services and AI platforms such as Azure OpenAI, OpenAI APIs, Hugging Face and Google Gemini/ADK.
  • Develop NLP pipelines for text processing, embeddings, summarisation, sentiment analysis, voice-to-text and speaker diarisation.
  • Design and implement vector search and retrieval solutions using Redis, ChromaDB and FAISS.
  • Develop AI-powered APIs and applications using FastAPI, Gradio and Python.
  • Collaborate with architects, data scientists, software engineers, business analysts and product teams to deliver enterprise data solutions.
  • Participate in Agile SDLC activities including requirements analysis, architecture, development, testing, deployment and production support.
  • Troubleshoot complex data, application and platform issues and provide scalable technical solutions.
Required Technical Skills
Data Engineering:

Python, PySpark, Apache Spark, Spark SQL, Scala, Hadoop, Hive, Kafka, Presto, Databricks, Cloudera, Snowflake

Cloud Technologies:

AWS, Azure, S3, Glue, EMR, Redshift, Kinesis, Lambda, RDS, DynamoDB, OpenSearch

Databases:

SQL Server, Oracle, PostgreSQL, Teradata, MongoDB, Redis

Programming:

Python, Java, Scala, SQL, Shell Scripting, Node.js

AI / GenAI / NLP:

Generative AI, LLM, NLP, RAG, Agentic RAG, LangChain, LangGraph, LlamaIndex, Hugging Face Transformers, Azure OpenAI, OpenAI API, Google Gemini/ADK, PyTorch

Vector & AI Search:

Redis Vector Database, ChromaDB, FAISS, Embeddings, Hybrid Search, Semantic Search

DevOps & Deployment:

Docker, Kubernetes, OpenShift, Jenkins, Git, Terraform, CI/CD

Data Integration & APIs:

REST APIs, GraphQL, FastAPI, API Gateway, AWS Lambda, CDC, Debezium

Data Visualisation:

Power BI, Data Modelling, Reporting and Analytics

Qualifications
  • Bachelor's or Master's degree in Computer Science, Information Technology, Programming & Systems Analysis, Computer Studies or a related discipline.
  • Strong professional experience in Big Data, Cloud Computing or related technology domains.
  • Experience working with large-scale enterprise data platforms and production data pipelines.
  • Strong programming and SQL skills.
  • Experience with cloud-based data engineering and modern data processing frameworks.
  • Experience with AI/ML, NLP or Generative AI will be highly advantageous.
Preferred Experience
  • Enterprise Banking / Financial Services experience.
  • Experience working with large-scale customer, transaction or financial datasets.
  • Experience with data migration and legacy ETL modernisation.
  • Experience implementing AI/GenAI solutions within enterprise data platforms.
  • Experience with production deployments and CI/CD environments.
  • Strong understanding of data governance, security, data quality and performance optimisation.
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