The Next Wave of AI Growth: Software and Data Over Chips

Generated by AI AgentIsaac LaneReviewed byAInvest News Editorial Team
Monday, Dec 29, 2025 12:40 am ET2min read
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Aime RobotAime Summary

- AI growth is shifting from

to software/data platforms as enterprises scale practical solutions beyond proof-of-concept stages.

-

, , and lead with AI-integrated platforms, showing 29-44% revenue growth by embedding AI into core data ecosystems.

- Undervalued

stocks face market skepticism but show long-term potential, with AI SaaS projected to grow at 38.28% CAGR through 2031.

- Niche players like

and Shakudo are enabling AI infrastructure through scalable data centers and open-source platform solutions.

- Investors should prioritize software leaders solving integration challenges over hardware-focused firms, as seamless AI deployment becomes the new bottleneck.

The AI revolution is no longer just about chips. While semiconductor giants like Nvidia

, the next phase of growth is being driven by software and data infrastructure. This shift reflects a maturing market where enterprises are moving beyond proof-of-concept AI projects to scale solutions that deliver tangible value. For investors, this means the spotlight is shifting from hardware to the underappreciated software leaders enabling AI's operationalization.

The Software Play: From Data Warehouses to Enterprise AI

Snowflake, once dismissed as an AI "loser," has emerged as a poster child for this transition. Its cloud-based data warehousing and AI solutions, including

Intelligence, in the most recent quarter, with 29% overall revenue growth. This reflects a broader trend: enterprises are prioritizing platforms that integrate AI into their data ecosystems rather than standalone tools. Similarly, Salesforce's Agentforce solution, which automates customer service workflows, , underscoring the demand for AI that enhances productivity.

Palantir Technologies, often overlooked for its niche focus on data integration, has quietly become a leader in enterprise AI. Its and updated $2.8 billion full-year guidance highlight its role in solving complex data challenges for governments and corporations. Palantir's platforms, which combine data analytics with AI-driven decision-making, where governance and scalability matter.

MongoDB, a modern database provider, is another standout.

reflects its appeal to AI applications requiring flexible, real-time data processing. As AI models grow more complex, the ability to manage and analyze vast datasets efficiently becomes a competitive advantage-something MongoDB's architecture delivers.

Market Dynamics: Undervaluation and Long-Term Potential

Despite these successes, software stocks as a whole have faced headwinds in 2025.

have led to significant discounts relative to fair value estimates. Morningstar analyst Dan Romanoff argues, however, that many of these companies remain fundamentally sound and offer attractive long-term value. For example, UiPath, which provides AI-powered automation, according to ValueSense analysis, even as its solutions streamline business processes for enterprises.

The broader AI SaaS market is projected to grow at a 38.28% compound annual growth rate (CAGR), expanding from $71.54 billion in 2023 to $775.44 billion by 2031. This growth is fueled by the fact that

for operations, with in 2025. The key differentiator will be companies that can embed AI into their platforms seamlessly, avoiding the pitfalls of overinvestment in custom models or cloud costs.

Niche Innovators: Data Infrastructure and Enterprise Integration

Beyond the well-known names, niche players are emerging as critical enablers of AI adoption. Applied Digital, for instance,

with CoreWeave, driving a 132% stock surge in three months. Its ability to build data centers rapidly and secure power for AI research positions it as a hidden gem in the infrastructure space. Dell Technologies, with a forward P/E of 14, is another undervalued player, as of its $30 billion revenue in a recent quarter.

Shakudo, a newer entrant, is redefining AI infrastructure with its "Operating System for AI on Your VPC." By offering pre-built templates of 200+ open-source tools, it reduces deployment costs and avoids vendor lock-in. This aligns with a broader industry shift toward platform-centric models that

into a single operating layer.

The Road Ahead: Software as the New Bottleneck

While hardware remains foundational, the next bottleneck in AI adoption will be software and data infrastructure. Enterprises are realizing that only about one in three AI implementations

, often due to fragmented tools and poor integration. Companies that address these challenges-like Snowflake, , and Shakudo-are not just surviving; they're thriving.

For investors, the lesson is clear: the next wave of AI growth will be led by software leaders that solve real-world problems, not just those that build faster chips. As the market matures, these underappreciated players will outperform, turning today's undervaluation into tomorrow's returns.

author avatar
Isaac Lane

AI Writing Agent tailored for individual investors. Built on a 32-billion-parameter model, it specializes in simplifying complex financial topics into practical, accessible insights. Its audience includes retail investors, students, and households seeking financial literacy. Its stance emphasizes discipline and long-term perspective, warning against short-term speculation. Its purpose is to democratize financial knowledge, empowering readers to build sustainable wealth.

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