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Senior Research Analyst

Wood Mackenzie


Job Location:

Gurgaon - India

Monthly Salary: Not provided by the employer
Posted: 22 August 2026 (8 days ago)
Application Deadline: 19 November 2026
Vacancies: 1 Vacancy

Job Summary

Wood Mackenzie is the global leader in analytics insights and proprietary data across the entire energy and natural resources landscape.


For over 50 years our work has guided the decisions of the worlds most influential energy producers utilities companies financial institutions and governments.


Now with the worlds energy system more complex and interconnected than ever before sector-specific views are no longer enough. Thats why weve redefined whats possible with Intelligence Connected.


By fusing our unparalleled proprietary data with the sharpest analytical minds all supercharged by Synoptic AI we deliver a clear interconnected view of the entire value chain. Our trusted team of 2700 experts across 30 countries breaks siloes and connects industries markets and regions across the globe.


This empowers our customers to identify risk sooner spot opportunities faster and recalibrate strategy with confidence whether planning days weeks months or decades ahead.


Wood Mackenzie
Intelligence Connected



Wood Mackenzie Brand Video

Wood Mackenzie Values

  • Inclusive we succeed together
  • Trusting we choose to trust each other
  • Customer committed we put customers at the heart of our decisions
  • Future Focused we accelerate change
  • Curious we turn knowledge into action

The Opportunity

Global wind and solar capacity additions now exceed all other generation technologies combined and the accuracy of weather-driven production estimates has become a first-order determinant of asset value financing cost and curtailment risk across every region Wood Mackenzie covers. As markets move toward hybrid storage-paired and round-the-clock renewable structures and merchant price exposure rises the gap between a well-specified and a poorly-specified production profile translates directly into basis points on project IRR and into real disputes between developers lenders and offtakers.

Wood Mackenzies Power & Renewables research is the reference point utilities IPPs developers investors and financial institutions turn to for independent defensible power market and asset-level views worldwide. That standing rests on the credibility of the data underneath it and weather-to-power modelling is one of the least commoditised highest-leverage parts of that data stack. The function is also evolving fast: machine learning and AI-based approaches to weather nowcasting satellite-derived resource estimation and calibration are moving from research curiosities to production tools and there are relatively few analysts who combine meteorological data fluency power market context and modern ML tooling making this a distinctive and fast-growing skill set to build early in a research career.

Joining this function gives you direct exposure to how resource assessment assumptions flow through into capacity expansion outlooks price curves and asset valuations used in live client transactions across multiple global markets rather than working on production forecasting as an isolated technical exercise

The Role

We are seeking an experienced Senior Research Analyst to lead the weather modelling and wind/solar production forecasting methodology for Wood Mackenzies global Power & Renewables research. You will design and continuously improve our production profile modelling framework including its calibration and validation processes and its use of satellite data and AI/ML-based techniques mentor junior analysts and act as the primary technical point of contact for clients and internal teams on resource assessment and generation forecasting matters across markets.

This role combines deep technical ownership of weather-to-power modelling with client-facing research delivery requiring both first-principles modelling judgement and the ability to communicate methodology and results to investment committees developers and policymakers globally.

Key Responsibilities

Methodology ownership and model development

  • Own and evolve the global methodology for converting weather and satellite data into wind and solar production profiles including power curve selection wake loss modelling soiling and degradation assumptions and curtailment treatment applied consistently across markets
  • Design and implement long-term resource assessment frameworks (P50/P90 exceedance inter-annual variability MCP correlation techniques) suitable for bankable investment-grade output incorporating asset characteristics (turbine and panel specifications layout hub height tilt/azimuth) into profile generation
  • Integrate satellite irradiance reanalysis (ERA5 MERRA-2) and NWP-based forecast data into a coherent defensible production profile framework with clear documentation of assumptions data lineage and known limitations
  • Evaluate and lead the adoption of machine learning and AI/LLM-based methods for weather nowcasting power curve calibration anomaly detection and forecast automation assessing where they materially improve on physical or statistical approaches and where they introduce interpretability or reliability risk
  • Lead calibration and validation of production profiles against SCADA and grid-metered generation globally quantifying forecast error by technology and geography and driving methodology refinements based on observed bias

Forecasting and market integration

  • Ensure wind and solar production profiles are correctly integrated into Wood Mackenzies capacity expansion dispatch and price formation models understanding how profile shape and inter-annual variability propagate through to curtailment merchant price capture and asset revenue forecasts across markets
  • Incorporate emerging trends including repowering hybridisation with storage and evolving curtailment patterns into production forecasting assumptions globally
  • Track advances in weather modelling satellite data products and AI/ML forecasting techniques and assess their applicability to Wood Mackenzies commercial modelling stack

Team leadership and quality control

  • Lead and mentor a team of Analysts and Research Analysts reviewing their weather and satellite data processing model outputs and documentation for accuracy and consistency.
  • Establish and enforce quality control standards across weather data sourcing profile generation calibration and validation workflows ensuring outputs are reproducible and audit-ready across all markets covered.
  • Manage workflows and priorities across global production profile deliverables ensuring timely high-quality delivery against research publication and client project deadlines

Client and stakeholder engagement

  • Act as the technical lead on resource assessment and production forecasting for client engagements bespoke advisory projects and due diligence support for renewable energy transactions worldwide
  • Present methodology and findings to clients industry stakeholders and internal research teams through reports presentations and direct engagement translating technical modelling detail into commercially relevant conclusions
  • Collaborate with regional P&R research and modelling groups to ensure production profile methodology is applied consistently and reflects Wood Mackenzies global modelling standards

Requirements

Qualification and experience

  • 710 years of relevant experience in wind/solar resource assessment weather/production forecasting or renewable energy technical advisory gained at a developer IPP technical due diligence firm meteorological services provider consultancy or financial institution
  • Masters degree or equivalent in Meteorology Atmospheric Science Renewable Energy Engineering Electrical Engineering Data Science or a related quantitative discipline
  • Demonstrated track record of leading resource assessment or production forecasting methodology including bankable long-term yield assessments used in financing or investment decisions
  • Advanced proficiency in Python (pandas NumPy xarray scikit-learn) and/or SQL for large-scale weather and satellite time-series data processing; experience with geospatial and NetCDF data formats
  • Direct experience with reanalysis and satellite weather datasets (ERA5 MERRA-2 NSRDB CAMS SARAH) and NWP-based forecasting systems; experience with resource assessment or plant performance tools (e.g. PVsyst SAM WAsP WindPRO) preferred
  • Hands-on experience applying machine learning or AI/LLM-based methods to weather forecasting power curve calibration or data pipeline automation and a clear-eyed view of where such methods add value versus where physical/engineering approaches remain more defensible
  • Experience integrating production profiles into power system or dispatch models (e.g. Plexos Aurora) is a strong advantage

Knowledge and skills

  • Deep understanding of wind and solar plant technology asset characteristics losses and the physical and statistical drivers of capacity factor variability across diverse global geographies and climates
  • Strong grasp of how production profile shape and variability feed into curtailment risk merchant price capture and asset-level revenue outcomes
  • Ability to critically assess modelling assumptions identify limitations in data or methodology and recommend more robust or commercially defensible approaches including when to adopt versus resist AI/ML-based tooling

Communication and leadership skills

  • Strong written and verbal communication skills in English with the ability to present technical methodology to non-technical senior audiences
  • Demonstrated experience mentoring or managing junior analysts
  • Fluency in additional languages is an advantage

#LI-MS1


Equal Opportunities


We are an equal opportunities employer. This means we are committed to recruiting the best people regardless of their race colour religion age sex (including pregnancy sexual orientation and gender identity) national origin disability or protected veteran status. You can find out more about your rights under the law at



Required Experience:

Senior IC


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