Lead Data Scientist

Compunnel, Inc.

Town of Florida (NY)

On-site

USD 120,000 - 150,000

Full time

14 days+

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Job summary

A leading technology firm is seeking a Lead Data Scientist to develop and deploy advanced forecasting models for renewable energy generation. This role involves designing machine learning pipelines, integrating data sources, and collaborating with cross-functional teams. Candidates should have advanced Python skills, experience in time-series forecasting, and knowledge of AWS services. Strong problem-solving and communication skills are also essential. Join in a dynamic and innovative environment focused on renewable energy solutions.

Qualifications

  • Proven experience in machine learning model deployment with monitoring.
  • Strong understanding of data pipelines and MLOps practices.
  • Excellent analytical and problem-solving skills.

Responsibilities

  • Lead forecasting model development for load, solar, and wind generation.
  • Design and implement machine learning pipelines from data ingestion to deployment.
  • Integrate external data sources into forecasting workflows.
  • Develop scalable data pipelines for real-time operations.
  • Build interactive dashboards for stakeholder communication.
  • Collaborate with cross-functional teams in an Agile environment.

Skills

Python
Time-series forecasting
Machine learning deployment
SQL
Data visualization
APIs integration
AWS services
Problem-solving
Communication skills

Tools

pandas
NumPy
scikit-learn
statsmodels
Streamlit
Plotly
Jira
Confluence

Job description

We are seeking a Lead Data Scientist to design, develop, and deploy advanced forecasting models for load, solar, and wind generation.

This role involves end-to-end ownership of the model lifecycle, from data ingestion and feature engineering to production deployment and monitoring, supporting real-time operational and strategic decision-making.

Key Responsibilities
  • Lead the development and deployment of forecasting models for load, solar, and wind generation.
  • Design and implement end-to-end machine learning pipelines, including feature engineering, model training, and evaluation.
  • Integrate external data sources such as weather APIs into forecasting workflows.
  • Develop scalable data pipelines for real-time and batch forecasting operations.
  • Deploy models to production environments with monitoring, alerting, and recovery mechanisms.
  • Build automated retraining and evaluation frameworks to ensure model performance and accuracy.
  • Create interactive dashboards and visualizations for stakeholder communication.
  • Collaborate with cross-functional teams including operations, engineering, and business stakeholders.
  • Participate in Agile development processes and contribute to continuous improvement initiatives.
  • Ensure delivery of cost-effective, high-quality forecasting solutions within operational timelines.
Required Qualifications
  • Advanced proficiency in Python, including libraries such as pandas, NumPy, scikit-learn, and statsmodels.
  • Strong experience in time-series forecasting techniques such as ARIMA, SARIMAX, or gradient boosting methods.
  • Proven experience deploying machine learning models into production environments with monitoring and maintenance.
  • Experience integrating APIs and external data sources into data pipelines.
  • Working knowledge of AWS services such as EC2, S3, Lambda, or SageMaker.
  • Strong SQL skills with experience handling large datasets and optimizing queries.
  • Experience building dashboards using tools such as Streamlit, Plotly, or similar.
  • Strong understanding of data pipelines, version control (e.g., Git), and MLOps practices.
  • Excellent problem-solving and analytical skills.
  • Strong communication and collaboration skills in cross-functional environments.
Preferred Qualifications
  • Experience with advanced feature engineering, uncertainty quantification, and probabilistic forecasting.
  • Domain knowledge in energy markets or renewable generation forecasting.
  • Experience working with Agile tools such as Jira or Confluence.
  • Familiarity with evaluation metrics such as MAE, RMSE, and MAPE.
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