Editor’s note: As part of a special Climate Week NYC 2026 guest-contributor series on USA Stories, featuring voices from organizations working alongside Siemens to advance sustainability through collaboration and collective action, we asked Celine Le Goazigo, Energy Lead at World Business Council for Sustainable Development (WBCSD), to address key topics about powering the AI economy. (Siemens is a member of WBCSD.)
Electricity demand is entering a new era. After two decades of largely flat demand in many mature markets, the rapid expansion of artificial intelligence (AI) and data centers is creating sustained load growth. This shift is changing assumptions about grid capacity, energy infrastructure, and the pace of clean-power deployment.
AI growth is compelling utilities, policymakers, regulators, data-center operators, technology companies, and communities to reconsider how they plan, finance, connect, and operate energy infrastructure. The challenge extends beyond the amount of electricity AI infrastructure may require. It also involves the speed, geographic concentration, and investment intensity of that demand, along with the ability of grids and markets to respond quickly enough to support economic growth. The choices made now about where and how this infrastructure is built will shape not only its long-term carbon footprint, but also the resilience, affordability and competitiveness of the wider energy system.
Grid constraints do not have to become barriers to the AI economy. Addressed early and collaboratively, they can create an incentive for grid modernization, clean energy investment, digital deployment, and more flexible electricity use. Regions and companies that connect AI infrastructure development with energy-system planning can strengthen local capacity, reduce long-term energy risk, and establish a competitive advantage in attracting investment.
The key is to begin infrastructure planning alongside investment decisions. To realize that opportunity, stakeholders must treat the grid as a design partner and design AI data centers as active, flexible participants in the power system rather than passive points of consumption.
Despite hurdles including higher energy costs and grid congestion, electrification remains one of the most important levers for decarbonizing industry. Technical, economic, and regulatory barriers will continue to slow the deployment of electrified solutions unless key actors join forces to address them. Accelerating the energy transition therefore requires businesses, governments, utilities, technology companies, and grid operators to turn rising AI-driven demand into a shared opportunity for faster electrification, clean energy investment, and a more resilient and competitive energy system.
How AI data centers are reshaping energy demand and grid capacity
The return of sustained load growth is upending decades-old assumptions about grid capacity, pricing, and energy risk, with implications across sustainability, infrastructure, and economic development.
On sustainability, AI infrastructure moves the choice point earlier rather than later. Data centers built today will run for decades, and the sourcing and energy-flexibility decisions made now will influence a facility’s carbon profile for the lifetime of the asset. Integrating sustainability at the design stage, therefore, costs far less than retrofitting it later. It can also provide greater certainty around future energy costs, climate commitments, and access to clean power.
On energy infrastructure, large, creditworthy anchor loads can underwrite grid modernization that benefits the whole system. A substation upgrade or transmission reinforcement built for one operator can unlock capacity for the surrounding industrial base and for residential connections. Communities near new data-center development want confidence that added demand will strengthen local infrastructure while preserving their environment. Leaders who can connect data-center investment to a more resilient and affordable local grid can build support faster than those who address community impact separately from the infrastructure story.
On economic development, the scale of capital in motion proves how fiercely regions and countries are competing for investment. Capital expenditure among the 14 largest data-center operators globally is set to reach close to $750 billion this year, up from a little less than $450 billion last year. More than 23 gigawatts of data-center capacity was under construction worldwide as of late 2025, with about three quarters of it in the United States. Success will go to the regions that can connect projects quickly without compromising sustainability, jobs, affordability, or shared infrastructure benefits.
How leading companies combine AI growth with climate commitments and clean-energy investments
The pattern seen across leading companies confirms that electrification is not stalling because of technology, but because of gaps in value-chain coordination. We reached that conclusion after connecting companies across the data-center value chain through targeted dialogues and at WBCSD Annual Meeting 2026 in April 2026.
The organizations successfully balancing growing energy demand with climate commitments share several practices:
- They begin substantive conversations with grid operators before a site decision is final, turning a potentially multi-year interconnection queue into a more manageable planning exercise.
- They design for energy flexibility from day one, treating demand response and load-shifting capability as core facility specifications rather than features added later.
- They pair long-term clean-power procurement with explicit grid-investment commitments, so the resulting agreement does more than move electrons on paper.
- They look beyond national grid averages to locational data, because the carbon intensity and available capacity at a specific substation can differ substantially from the national picture used in much of today’s reporting.
The common thread is that these companies treat the grid as a design partner and the facility itself as an asset within the power system, not simply as a large point of consumption awaiting connection. This approach allows grid constraints to inform better siting, design, and operating decisions, turning energy planning into a source of business resilience and competitive differentiation.
To help accelerate progress, WBCSD is developing a set of practical resources: a brief for policymakers, drawing on insights from WBCSD’s Business Breakthrough Barometer 2026, and an electrification navigator, identifying priority actions for business and regulators to unlock barriers by 2030. Both are set for release in the second half of 2026.
These resources explore how businesses, policymakers, and regulators can create the conditions for a faster and more effective transition. By identifying shared priorities, practical actions, and opportunities for collaboration, they provide a roadmap for accelerating implementation, reducing barriers, and unlocking long-term economic, environmental, and societal value.
