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Modeling Simulation Analyst Jobs in Louisiana (NOW HIRING)

... simulations * Architect and utilize Azure-based data analytics platform for scalable model development and deployment. Qualifications RequiredEducation, Skills & Experience * Bachelor's degree in ...

Performs highly complex systems modeling, simulation, and analysis * Performs continual maintenance and provides highly complex solutions for security, backup, and redundancy problems * Prepares and ...

Deep knowledge of descriptive analytics, predictive modeling, prescriptive analytics, data visualization, regression analysis, decision trees, optimization, simulation, database querying, and data ...

Deep knowledge of descriptive analytics, predictive modeling, prescriptive analytics, data visualization, regression analysis, decision trees, optimization, simulation, database querying, and data ...

Senior Cloud Engineer

Baton Rouge, LA · On-site

$53.50 - $71.50/hr

... models and digital twins to end user operators. You will be responsible for creating end to end ... Deploy and manage containerized simulation workloads on Kubernetes (EKS, AKS, GKE) or on managed ...

Develop Simulation Models * Performs hydraulic calculations for existing system analysis or grassroots design * Evaluates the performance of process equipment * Designs process equipment * Develop ...

Develop Simulation Models * Performs hydraulic calculations for existing system analysis or grassroots design * Evaluates the performance of process equipment * Designs process equipment * Develop ...

Showing results 21-40

Modeling Simulation Analyst information

See Louisiana salary details

$15

$37

$61

How much do modeling simulation analyst jobs pay per hour?

As of Aug 15, 2026, the average hourly pay for modeling simulation analyst in Louisiana is $37.45, according to ZipRecruiter salary data. Most workers in this role earn between $25.91 and $46.92 per hour, depending on experience, location, and employer.

What are the key skills and qualifications needed to thrive as a modeling simulation analyst, and why are they important?

To thrive as a Modeling Simulation Analyst, you need a strong background in mathematics, statistics, and computer science, often supported by a relevant degree such as in engineering or applied mathematics. Proficiency in simulation software (e.g., MATLAB, Simulink, Arena), programming languages (such as Python or C++), and familiarity with data analysis tools are typically required. Strong analytical thinking, attention to detail, and effective communication skills set top candidates apart in this role. These abilities are vital for developing accurate models, interpreting complex data, and clearly presenting findings to support strategic decision-making.

How does a modeling simulation analyst typically collaborate with cross-functional teams during a project?

Modeling Simulation Analysts frequently work alongside engineers, data scientists, and project managers to develop and refine simulation models. Collaboration often involves gathering system requirements, validating model assumptions with subject matter experts, and presenting simulation results to stakeholders. Clear communication is essential, as analysts must translate complex simulation data into actionable insights for decision-makers. Regular team meetings and iterative feedback are common to ensure the models accurately reflect real-world scenarios and project goals.

What is a modeling simulation analyst?

Modeling Simulation Analysts are professionals who use mathematical models, simulations, and analytical techniques to study complex systems and predict their behavior. They help organizations make informed decisions by evaluating scenarios, testing hypotheses, and optimizing processes through virtual models. These analysts work in various industries, including defense, healthcare, manufacturing, and transportation, to improve efficiency, reduce costs, and support planning and strategy. Their work often involves collaboration with engineers, scientists, and decision-makers to interpret simulation results and implement solutions.

What is the difference between Modeling Simulation Analyst vs Data Analyst?

AspectModeling Simulation AnalystData Analyst
Required CredentialsBachelor's or master's in engineering, computer science, or related fields; proficiency in simulation softwareBachelor's in statistics, mathematics, or related fields; proficiency in data analysis tools
Work EnvironmentEngineering labs, simulation centers, or technical departmentsOffice settings, data centers, or business environments
Employer & Industry UsageManufacturing, aerospace, defense, or engineering firmsFinance, healthcare, marketing, or business sectors
Common Search & ComparisonYesYes

The Modeling Simulation Analyst focuses on creating and analyzing simulations to predict system behaviors, often requiring engineering or technical expertise. In contrast, Data Analysts interpret data sets to inform business decisions, typically using statistical tools. While both roles involve data handling, the Modeling Simulation Analyst emphasizes modeling complex systems, whereas Data Analysts focus on data interpretation for strategic insights.

What are popular job titles related to Modeling Simulation Analyst jobs in Louisiana?

For Modeling Simulation Analyst jobs in Louisiana, the most frequently searched job titles are:

What job categories do people searching Modeling Simulation Analyst jobs in Louisiana look for?

The top searched job categories for Modeling Simulation Analyst jobs in Louisiana are:

What cities in Louisiana are hiring for Modeling Simulation Analyst jobs?

Cities in Louisiana with the most Modeling Simulation Analyst job openings:

Asset Management Data Analyst

Cleco

Pineville, LA • On-site

Full-time

Posted 12 days ago


Job description

At Cleco, we're not just poweringlives-we're powering a cleaner, smarter future for Louisiana.With bold investments in innovativeenergysolutions, we're transforminghow we power ourcommunities: smarter, cleaner, and more sustainable.This is a long-term commitmentto our people and our communities because our future-and the future of generations to come-depends on it. If you're ready to make an impact where it matters most, join us at Cleco-where we're Energizing Your Tomorrow.

The Asset Management Data Analyst II is an experienced professional responsible for integrating plant operational and commercial data & analytics into business processes to optimize generation asset performance. This position will leverage analytical skills, business intelligence expertise, and operational & commercial experience to deliver insights and data solutions that enhance operational efficiency, asset health, maintenance optimization, and commercial performance through various means including data visualization dashboards. This role will require a deep understanding of time series data, data governance & integrity strategies, its integration with business data, and its application in monitoring plant performance and supporting maintenance decision-making. This position bridges the gap between Asset Management, Generation Operations, Generation Services, Energy Operations, Corporate Data Analytics/Data Science, and IT to meet business objectives.

Key Responsibilities

  • Champions a corporate culture that emphasizes transparency, integrity, safety, environmental responsibility, employee development, sense of belonging, customer service, and operational excellence.
  • Accelerate the development and implementation of data analytics to support business decision-making.
  • Gather and analyze operational and commercial data to identify trends, patterns, and insights.
  • Monitor and report on the progress of analytics and data management initiatives.
  • Stay up-to-date with industry trends and best practices in data analysis to continuously improve asset performance
  • Collaborate with generation plant teams to understand data requirements, focusing on time series data from operational systems and integrating it with business data for comprehensive insights.
  • Develop and maintain dashboards, reports, and visualizations using BI tools (e.g., Power BI, Tableau) to support operational performance, asset health monitoring, and maintenance strategy development.
  • Analyze time series data to identify trends, anomalies, and opportunities for optimizing equipment performance and improving reliability.
  • Work with plant teams to model asset health metrics and KPIs that inform predictive maintenance and lifecycle strategies.
  • Support data quality initiatives by ensuring time series data is accurate, reliable, and consistent.
  • Participate in the development and optimization of analytics processes, including the integration of operational and business data.
  • Design and maintain data workflows and pipelines, with a focus on ensuring real-time or near-real-time availability of time series data.
  • Collaborate with enterprise data teams to align local plant data strategies with broader enterprise initiatives, including data governance and architecture.
  • Assist in defining roadmap for AI/ML in asset management including anomaly detection methods and digital twin simulations
  • Architect and utilize Azure-based data analytics platform for scalable model development and deployment.

Qualifications

RequiredEducation, Skills & Experience

  • Bachelor's degree in Information Systems, Data Analytics, Computer Science, Engineering, or a related field.
  • 3 - 8 years of experience in a data analytics or business intelligence role preferred.
  • Hands-on experience with BI tools (e.g., Power BI, Tableau, Qlik, etc.) and proficiency in SQL.
  • Experience working with time series data from SCADA systems, IoT devices, or other industrial data sources.
  • Experience in data integration and workflow optimization, particularly in combining operational and business datasets.
  • Strong analytical and problem-solving skills.
  • Strong experience in generation / commercial operations.
  • Proficiency in data visualization tools (e.g., Power BI) to create dashboards and reports.
  • Knowledge of data management practices and tools.
  • Excellent communication and presentation skills.
  • Ability to work collaboratively with cross-functional teams.
  • Strong organizational and project management skills.
  • Understanding of asset health metrics, predictive maintenance strategies, and their role in enhancing operational efficiency.
  • Familiarity with enterprise data concepts such as data governance, data quality, and data architecture is a strong plus.
  • Ability to translate complex data into insights that support asset health management and maintenance strategies.
  • Experience with Azure data science and big data services (such as Azure Databricks, Azure Machine Learning, Azure Data Lake) or similar cloud platforms (AWS/GCP)
  • Progression to this level is strictly restricted based on critical individual capabilities and business requirements; must be supported by market survey data

Licenses and Certifications

  • Relevant certifications (e.g., Certified Business Analysis Professional (CBAP), Power BI Data Analyst Associate Certification) are a plus but not required.

Key Competencies

BEHAVIORAL

  • Building Partnerships
  • Leading Teams
  • Business Acumen
  • Communication
  • Courage
  • Building Self-Insight
  • Driving for Results
  • Energizing the Organization
  • Driving Execution
  • Building Trusting Relationships
  • Driving Innovation
  • Planning and Organizing
  • Safety
  • Establishing Strategic Direction

TECHNICAL

  • Analytical skills
  • Organizational skills
  • Strategic Planning
  • Data Collection and Analysis
  • Presentation Skills
  • Business Intelligence skills

May perform other duties as assigned.

Salary dependent on experience, skills, education, and training.