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Open nowPosted 23 days ago

Forecast Model Analyst (Hybrid)

California ISO10 open roles

Pay
$45 – $63 an hour
Where
Folsom, CA, United States
Work mode
Hybrid
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Your applicationOpen nowForecast Model Analyst (Hybrid)California ISO · Folsom, CA, United States
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The clock on this job

Early applications get read.

8.4% of postings close within 7 days. Measured by our own scanner across the market. California ISO postings stay open a median of 46 days.

Share of postings closed within
  1. 1.8%1 day
  2. 4.0%3 days
  3. 8.4%7 days
  4. 15.4%14 days
  5. 34.3%30 days
This job: posted 23 days ago

California ISO median: 46 days open

The posting

Company Description

The California Independent System Operator (ISO) manages the flow of electricity across the high-voltage, long-distance power lines that make up 80 percent of California's power grid. We safeguard the economy and well-being of 30 million Californians by operating the grid reliably 24/7.

As the impartial grid operator, the California ISO opens access to the wholesale power market that is designed to diversify resources and lower prices. It also grants equal access to 25,865 circuit-miles of power lines and reduces barriers to diverse resources competing to bring power to customers.

The California ISO's function is often compared to that of air traffic controllers. It would be grossly unfair for air traffic controllers to represent one airline and profit from allowing that company's planes to go through before others. In the same way, the California ISO operates independently—managing the electron traffic on a power grid we do not own—making sure electricity is safely delivered to utilities and consumers on time and reliably.

The California ISO is committed to the health, safety, and work/life integration of its employees and is proud to offer flexible work arrangements. This position works in a hybrid capacity.

Job Description

Under the general direction of the Director, participates in the research, development, implementation, monitoring, and continuous improvement of forecasting models supporting short-term load, wind, solar, and uncertainty forecasts. Utilizes advanced statistical methods, machine learning, artificial intelligence, numerical weather prediction, and large-scale data analytics to improve forecast accuracy and operational reliability. Develops methodologies that quantify uncertainty and assess emerging impacts from distributed energy resources (DERs), electric vehicles (EVs), demand response, energy efficiency, building electrification, and other evolving grid trends.

What You Will Be Doing:

  • Participates in the research, development, implementation, and maintenance of forecasting analytical tools, and data processes supporting short-term load, wind, solar, weather, and uncertainty forecasting. Validates, integrates, and analyzes large, diverse datasets including weather, load, renewable generation, distributed energy resources, and other operational data sources. Develops automated workflows and enhances existing tools or creates new solutions using programming languages and analytical technologies such as Python, SQL, R, and related technologies. Identifies opportunities to improve forecast processes, data quality, model performance, and operational efficiency.
  • Researches, develops, enhances, and maintains complex energy methodologies and models for load, wind, solar, uncertainty, demand response, energy efficiency, and emerging grid technologies, including distributed energy resources (DERs), electric vehicles, battery storage, distributed generation, and other evolving energy technologies. Applies statistical analysis, machine learning, artificial intelligence, data mining, visualization techniques, and numerical weather prediction data to improve forecast accuracy, reliability, and operational decision support. Evaluates the impacts of changing grid conditions, renewable energy growth, electrification, and extreme weather events on forecasting methodologies and model performance. Develops and maintains probabilistic forecasting methodologies, uncertainty metrics, and model performance monitoring tools. Monitors forecast performance, evaluates model outputs and input data quality, and conducts forecast verification, post-analysis, and model tuning to identify trends, quantify and communicate forecast uncertainty, and recommend enhancements that improve forecast accuracy, reliability, and operational effectiveness.
  • Coordinates and participates in assigned workstreams and participates in forecasting projects and initiatives to implement new models, data integrations, applications, and enhanced functionality into production environments. Collaborates with internal stakeholders to define business and technical requirements, test solutions, resolve issues, and support the successful deployment, monitoring, and operation of forecasting systems and processes.
  • Monitors developments in forecasting, meteorology, data science, machine learning, artificial intelligence, numerical weather prediction, and power system operations. Evaluates emerging methods, technologies, and industry practices for potential application to CAISO forecasting functions and communicates technical findings, recommendations, forecast performance, and model results to management and stakeholders.

Qualifications

Level of Education and Discipline:

A Bachelor's degree (BA, BS) or equivalent education, training or experience in Engineering, Mathematics, Statistics, Computer Science, Meteorology, Economics, or a closely related field. Master’s Degree preferred.

Amount of Experience:

Equivalent years of education and training, plus two (2) or more years related experience.

Type of Experience:

Experience in short- or long-term forecasting (Load, Wind and/or Solar generation, Uncertainty) using artificial neural network (ANN), Support Vector Machine (SVM), and/or regression load forecasting techniques. Open-source project experiences that demonstrate programming, mathematical, and machine learning abilities and interest. Research experience in Machine Learning, Artificial Intelligence, and Neural Networks (e.g. links to open-source work or link to novel learning algorithms) preferred. Knowledge and experience in electricity market designs and power system operations desired. Experience in forecast model technique, tuning, and demonstrated model improvements desired. Familiarity with Numerical Weather Prediction Models and aptitude for working with the statistical analysis of data and gridded atmospheric data sets. Familiarity with ITRON forecast model is preferred. Desired programming languages – SQL, python, R, VBA, etc.

Additional Skills and Abilities:

Strong verbal and written communication and documentation skills required, with a demonstrated attention to detail. Ability to use deductive reasoning and analytical thinking with sound judgment and decision-making skills. Strong interpersonal and conflict resolution skills are also essential. Must be self-starting and willing and able to work independently in a dynamic corporate organization under pressure of tight deadlines and aggressive expectations. Problem solving skills with the ability to influence others without direct authority. Must be able to work effectively in a team environment as facilitator and team member. Must be proficient with Microsoft Office Suite.

Additional Information

The pay range for the Forecast Model Analyst position is $45.11/hr - $63.16/hr

All your information will be kept confidential according to EEO guidelines.

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