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George Bernard Consulting

Data Scientist (Architect) at George Bernard Consulting, via carbon.talent

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via Himalayas · Open original listing

Job Description • Lead the design, development, and deployment of AI/ML models for complex business use cases.

Remote · Sri LankaPermanent

Stack

Data-ScientistData-Science-ArchitectMachine-Learning-EngineerData-ArchitectSenior-Data-Science-ArchitectData-Science-Architecture

Must-haves

  • Minimum 10+ years of total IT experience.
  • Strong background in data modeling, statistical analysis, and MLOps concepts.
  • Experience architecting end-to-end data science solutions at enterprise scale.
  • Nice-to-Have Skills
  • Experience with Azure cloud services (Azure ML, Data Factory, Databricks, Synapse, etc.).
  • Knowledge of big data platforms and distributed computing.

About this role

Job Description

  • Lead the design, development, and deployment of AI/ML models for complex business use cases.
  • Architect solutions involving unstructured data, including text, images, logs, and documents.
  • Build large-scale data pipelines using Python, PySpark, or Scala.
  • Drive machine learning lifecycle processes: data preparation, feature engineering, model selection, training, validation, and monitoring.
  • Create BI dashboards and data visualizations to communicate insights to leadership and stakeholders.
  • Work closely with engineering teams to operationalize models in production environments.
  • Provide technical leadership and mentorship to data science teams.
  • Ensure solutions are scalable, secure, and aligned with enterprise data architecture standards.
  • Explore new techniques, tools, and frameworks to enhance analytics capabilities

Requirements

  • Minimum 10+ years of total IT experience.
  • Minimum 5+ years of hands-on expertise in the following (must-have): AI/ML algorithm development , Unstructured data processing , Python with PySpark or Scala , Machine Learning engineering , BI Reporting / Dashboard Development
  • Strong background in data modeling, statistical analysis, and MLOps concepts.
  • Experience architecting end-to-end data science solutions at enterprise scale.

Nice-to-Have Skills

  • Experience with Azure cloud services (Azure ML, Data Factory, Databricks, Synapse, etc.).
  • Knowledge of big data platforms and distributed computing.
  • Understanding of NLP, deep learning, or advanced analytics techniques.
  • Exposure to CI/CD, model versioning, and automated ML pipelines

Originally posted on Himalayas