New Industry Research from Vultr Reveals Insights for Bridging the Gap Between AI Ambition and Maturity
Transformational AI enterprises are leading the charge, outperforming operational organizations across key business metrics
Vultr, the world’s largest, privately-held cloud computing platform, released a new industry report, The New Battleground: Unlocking the Power of AI Maturity with Multi-Model AI. The groundbreaking new study reveals a clear correlation between an organization’s AI maturity and its ability to achieve superior business outcomes, outpacing industry peers in revenue growth, market share, customer satisfaction, and operational efficiency.
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“Over the next decade, everything will be rebuilt with AI at the core, with organizations integrating the principles of cloud engineering into their operations. As a result, we will see the rise of AI specialists and independents as they empower organizations to do transformative work and gain a competitive edge.”
Commissioned by Vultr and conducted by S&P Global Market Intelligence, the research surveyed over 1,000 US-based enterprise IT and digital transformation decision-makers responsible for their organization’s AI strategy across industries, including healthcare & life sciences, government/public sector, retail, manufacturing, financial services, and more. Of the respondents surveyed, almost three-quarters (72%) are at higher levels of maturity of AI use. The report also includes a qualitative perspective on AI use by enterprises of varying sizes across the United States through in-depth interviews with AI decision-makers and practitioners.
“As organizations worldwide capitalize on strategic investments in AI, we wanted to look at the state of AI maturity,” said Kevin Cochrane, CMO of Vultr’s parent company, Constant. “What we’ve found is that transformational organizations are winning the hearts, minds, and share of wallets while also improving their operating margins. AI maturity is the new competitive weapon, and businesses must invest now to accelerate AI models, training, and scaling in production.”
The Age of Multi-Model AI
The number of models actively used within an organization is a reliable measure of its deployed AI capabilities and overall AI maturity. The data reveals that advanced AI adopters leverage a multitude of models simultaneously as part of a multi-model approach.
On average, the number of distinct AI models currently operational stands at 158 with projections suggesting this number will rise to 176 AI models within the next year. This growth highlights remarkable acceleration in AI adoption across industries, underscored by the 89% of organizations anticipating advanced AI utilization within two years.
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AI proficiency and maturity is the new business performance battleground
AI is poised to permeate throughout the enterprise with 80% adoption anticipated across all business functions within 24 months. This will include AI being embedded across all applications and business units.
As AI builds on its new foothold across businesses, there will be an immense impact on enterprise-wide performance. According to the report, those with transformational AI practices reported that they outperformed their peers at higher levels. Specifically, 50% of transformational companies are performing “significantly better” against industry peers than those at operational levels, while a large majority of AI-driven organizations say they improved their 2022/2023 year-over-year performance in customer satisfaction (90%), revenue (91%), cost reduction/margin expansion (88%), risk (87%), marketing (89%), and market share (89%). Meanwhile, nearly half (40-45%) of organizations say AI is having a “major” impact on market share, revenue, customer satisfaction, marketing improvements, and cost and risk reduction.
“AI’s transformative impact is undeniable—it’s devouring industries and is becoming ubiquitous in every facet of business operations. This necessitates a new era of technology, underpinned by a composable stack and platform engineering to effectively scale these innovations,” said Cochrane.
AI spending is expected to outpace IT spend
To fully harness AI’s potential, 88% of the enterprises surveyed intend to increase their AI spend in 2025 with 49% expecting moderate to significant increases. Findings related to key infrastructure, partner, and implementation strategies include:
- For cloud-native applications, two-thirds of organizations are either custom-building their models or using open-source models to deliver functionality.
- In 2025, the AI infrastructure stack will be hybrid cloud with 35% of inference taking place on-prem and 38% in the cloud/multi-cloud.
- Thanks to the skills shortage, 47% of enterprises are leveraging a partner to help them with strategy and implementation, and deployment of AI at scale. Only 15% are leveraging hyperscalers such as AWS, GCP, or Azure.
- Open, secure, and compliant are the top attributes of cloud platforms for scaling AI across the organization, geographies, and to the edge.
“For years the hyperscalers have dominated the infrastructure market, relying on scale, resources, and technological expertise, but that is all about to change,” added Cochrane. “Over the next decade, everything will be rebuilt with AI at the core, with organizations integrating the principles of cloud engineering into their operations. As a result, we will see the rise of AI specialists and independents as they empower organizations to do transformative work and gain a competitive edge.”
Challenges to scaling AI across all enterprises
As the race to AI heats up, it will not be without its share of obstacles. Budget limitations, building or obtaining AI algorithms, lack of skilled personnel, and data quality are among the top hurdles organizations say they must resolve to graduate to the next stage of AI maturity.
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