Power Systems Distribution Specialist
Listed on 2026-07-30
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Engineering
Electrical Engineering, Systems Engineer
About the Role
As a Power Systems Distribution Engineer, you will own the power systems modeling and analysis capabilities at the core of Pravāh's grid intelligence platform, spanning both real‑time operational analysis and long‑term distribution planning.
On the operational side, you will build and validate power flow models that compute real‑time technical losses, estimate network state from sparse AMI and SCADA measurements, and identify anomalies across distribution feeders serving millions of customers. On the planning side, you will develop simulation workflows for new distribution system design, including capacity expansion, DER interconnection studies, voltage regulation, and contingency analysis, that utilities use to make capital investment decisions.
You will work at the intersection of classical power systems engineering and modern software: translating domain expertise into scalable computational workflows, collaborating directly with ML engineers who are building demand and weather forecasting models, and with software engineers who are product ionizing your analysis into utility‑facing tools. You will also be the domain authority in conversations with utility partners, understanding their operational challenges, data environments, and regulatory contexts across India, the US, and other markets.
This is a founding role. You will not be running studies in isolation. You will shape how Pravāh thinks about the grid, define what problems we solve, and build the analytical engine that hundreds of millions of customers ultimately depend on.
Key Responsibilities Operational Power Flow and Loss Analysis- Build, validate, and maintain distribution power flow models for utility clients, ingesting real‑world network topology (GIS, CIM), asset parameters (transformer ratings, conductor impedances, capacitor banks), and operational measurements (AMI, SCADA) to produce accurate steady‑state solutions.
- Develop and operationalize real‑time technical loss computation workflows that run continuously against live or near‑live meter data, identifying loss hotspots at the feeder, distribution transformer, and segment level across networks with thousands of nodes.
- Design methods for distribution system state estimation from sparse and noisy measurement data, handling the reality of Indian DISCOMs where AMI penetration may be partial, SCADA coverage is inconsistent, and network connectivity records are incomplete or inaccurate.
- Build automated validation pipelines that detect data quality issues, topology errors, and measurement inconsistencies before they propagate into power flow results, including cross‑referencing GIS asset records against electrical measurements to identify unauthorized connections, phase imbalances, and metering anomalies.
- Develop loss disaggregation methodologies that separate technical losses (I²R, transformer core/copper) from commercial losses (theft, metering errors), enabling utilities to target interventions with quantified impact estimates.
- Develop simulation workflows for new distribution system planning, including capacity expansion studies, feeder routing optimization, transformer sizing, and voltage regulation analysis for greenfield and brownfield scenarios.
- Build and run hosting capacity analysis and DER interconnection studies to evaluate the impact of rooftop solar, battery storage, and EV charging on distribution feeders, including voltage rise, reverse power flow, protection coordination, and thermal limits.
- Perform contingency analysis and reliability studies, covering N‑1 scenarios, fault current calculations, and protection coordination reviews, to support utility investment planning and regulatory filings.
- Develop power flow scenarios that model the impact of demand growth, electrification (EV, heat pumps), and DER penetration on existing distribution infrastructure over 5 to 20 year planning horizons.
- Support voltage optimization and power factor correction studies, analyzing capacitor placement, voltage regulator settings, and conservation voltage reduction (CVR) opportunities to reduce losses and defer capital upgrades.
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