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Lufthansa Technik Services India Pvt Ltd Linkedin · Posted 21d ago

Data Scientist

India

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Indexed description

Roles & responsibilities :


Delivery of Key Projects:

  • Successfully deliver advanced analytics and data science projects within predefined timelines and budget constraints.


Collaboration:

  • Collaborate effectively with data engineers and ML engineers to comprehend data and models, utilizing various advanced analytics capabilities.


Solution Development:

  • Develop efficient solutions for complex problems, showcasing expertise in data structures like Delta/Parquet, databases, data analytics, Python programming, and statistics.


End-to-End Pipeline Management:

  • Manage the entire data science pipeline, including problem scoping, data gathering, modeling, insights generation, visualizations, monitoring, and maintenance.


Dashboard Design:

  • Design dashboards using Python Dash (plotly) or Flask framework for effective data visualization and reporting.


Technological Expertise:

  • Utilize CI/CD tools, data pipeline technologies, and visualization/data storytelling tools proficiently.


ETL Pipeline Building:

  • Construct ETL pipelines using Python or Azure Synapse to facilitate efficient data processing and management.


Data Procurement and Management:

  • Independently procure and process data, ensuring seamless integration within the company's overall data management strategy.


Technology Exploration:

  • Continuously monitor advancements in artificial intelligence technology and identify applications for problem-solving within the company.


Technical Skills:


  • Proficiency in Python and common libraries (Dash, Pandas, Scikit-Learn, Pydantic, TensorFlow).
  • Strong knowledge of statistics and Probability.
  • Set up cloud alerts, monitors, dashboards, and logging systems; troubleshoot data platform infrastructure as needed.
  • Experience in OpenShift/Kubernetes and Azure ML is desirable.
  • Proficiency in programming languages: Python (Dash) and database query languages SQL or KQL.
  • Good applied statistical skills, including hands-on experience in time series modeling, predictive modeling, distributions, and
  • regression.
  • Knowledge of DevOps/MLOps.
  • Exceptional analytical and problem-solving skills.



Preferred candidate profile


  • Bachelor's or Master's degree in Computer Science or a related technical field, or equivalent experience.
  • Total of 4 to 8 years of professional experience.
  • Minimum of 4 years of experience in data science/machine learning.
  • Minimum 3 years of experience with SQL.
  • Experience in DevOps, preferably with hands-on experience in one or more cloud service providers, with Azure preferred.
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