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Why the Recent Analyst Price Target Hike Signals a High-Conviction Buy Opportunity in Emerging Battery Tech

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The recent surge in analyst optimism around Enovix Corporation (NASDAQ: ENVX) is not merely a reaction to short-term earnings beats or speculative hype. It reflects a fundamental shift in how the market perceives the company’s ability to deliver on its technological promise. With Benchmark’s bold price target increase from $15 to $25—joined by upgrades from Canaccord Genuity and B. Riley Financial—Enovix has moved from a speculative bet to a high-conviction play in the battery technology sector. This article unpacks why the AI-1 platform, combined with the company’s strategic execution, makes Enovix a compelling investment opportunity.

The AI-1 Platform: A Game-Changer in Energy Density and Scalability

Enovix’s AI-1 platform is not just another incremental improvement in battery chemistry. It represents a paradigm shift. With an energy density of 900 Wh/L+, it outpaces the 600–700 Wh/L range of conventional lithium-ion cells, offering a 30–40% improvement. This is critical for two markets: consumer electronics, where device manufacturers are desperate to extend battery life without increasing device size, and electric vehicles (EVs), where energy density directly correlates with range and cost efficiency.

The platform’s fast-charging capability (3C rates) and 1,000-cycle lifespan further differentiate it. These metrics align with the demands of next-generation smartphones and EVs, where users expect rapid charging and long-term durability. Analysts at Northland Securities and Ladenburg Thalmann have highlighted that Enovix’s technology could force competitors to accelerate their R&D timelines or risk obsolescence.

Strategic Execution: From Lab to Market

Enovix’s recent Q2 2025 results underscore its ability to translate innovation into commercial progress. Revenue of $7.5 million—surpassing expectations of $5.57 million—demonstrates growing demand for its current product suite. While the company remains unprofitable (EPS of -$0.13), the margin of outperformance is significant. More importantly, the AI-1 platform is no longer a theoretical concept; it is in the hands of potential customers, including major smartphone OEMs.

The key question now is scalability. Enovix must prove it can manufacture AI-1 cells at volume without compromising cost efficiency. This is where the recent analyst upgrades become telling. Benchmark’s $25 price target assumes Enovix secures a major OEM contract within the next 12–18 months—a step that would validate its technology and unlock revenue growth. Similarly, Canaccord’s $22 target hinges on the company’s ability to maintain an average selling price (ASP) premium as it scales production.

Risk vs. Reward: A Calculated Bet

Investors are not blind to the risks. Enovix’s path to profitability remains unproven, and the battery sector is crowded with competitors, from established players like Panasonic to startups with similar claims. However, the recent analyst consensus—11 Wall Street firms averaging a $18.90 price target—suggests that the market is factoring in a best-case scenario. At $10.78, the stock offers a 75% upside, assuming the company meets its key milestones.

The critical inflection point will be the announcement of a major OEM partnership. A deal with a Tier 1 smartphone manufacturer would not only validate Enovix’s technology but also provide the capital and infrastructure needed to scale production. Meanwhile, the AI-1 platform’s potential in EVs—a market projected to grow to $1.3 trillion by 2030—adds a long-term tailwind.

Investment Thesis: Buy for the Long Game

For investors with a 3–5 year horizon, Enovix presents a high-conviction opportunity. The AI-1 platform’s technical superiority, combined with the company’s execution in Q2 2025, justifies the recent price target hikes. While the stock is volatile and carries risks, the potential rewards are asymmetric: a successful commercial rollout could see Enovix’s valuation rival that of today’s EV battery leaders.

In conclusion, the recent analyst upgrades are not a fad but a recognition of Enovix’s unique position in the battery tech race. For those willing to bet on the next generation of energy storage, ENVX is a stock worth watching—and buying.



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Fortune Tech: Figma crushed, Eudia attacks, AI winter lessons

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Good morning. In today’s edition, more headlines about AI companies poaching AI talent, only to be sued by that talent’s former AI employers for stealing trade secrets.

Nothing we aren’t used to seeing in tech, but still…to apply an old sports idiom to the rapidly evolving world of AI, the best defense is a good offense, no?

Today’s tech news below. —Andrew Nusca

Want to send thoughts or suggestions to Fortune Tech? Drop a line here.

Figma gets crushed in its post-IPO earnings debut

Dylan Field, co-founder and chief executive officer of Figma, in Sun Valley, Idaho, on July 11, 2024. 

David Paul Morris/Bloomberg/Getty Images

Shares of design software company Figma plunged 14% in extended trading yesterday as investors took a dim view of Figma’s first-quarter earnings report. 

In its fiscal second quarter, Figma’s revenue grew a healthy 41% year-over-year to $249.6 million, roughly in line with analyst expectations. Figma reported $28.2 million in net income, or break-even on a per share basis.  

“We’re at the very start of what I hope is a long-term relationship together,” CEO Dylan Field confidently told listeners as he kicked off the earnings call.

Field, who cofounded the company in 2012 and watched its $20 billion acquisition by Adobe fall apart in 2023, clearly isn’t one to get caught up in the negative. 

“No one knows whether we’re going to look back in five years at everything that’s happening right now in AI and say, ‘Oh my God, those were the bubbliest of times,” Field told Fortune yesterday ahead of the call. “Or: ‘Wow, we totally underestimated the effect it would have on society.’”

Field believes one of the key intersections between AI and design is that AI tools will help broaden access, letting more people become designers. Figma added four new AI-native tools to its platform this quarter and told investors on the call to expect significant investments in AI going forward.

“Our philosophy is that as the models get better, we get better,” he said. “That’s always the test I have strategically for us.” —Allie Garfinkle

Meet the $100m AI startup that wants to kill the billable hour

Eudia, a Palo Alto-based AI startup, is offering something entirely new: the world’s first AI-augmented law firm. 

Its end goal is nothing less than the death of the billable hour that, according to CEO Omar Haroun, has run entirely out of control. 

“Most legal departments have lost control of their budgets and their knowledge,” Haroun said in a press release announcing the launch of Eudia Counsel, which he called “the first AI-native law firm.”

The company has fought hard to bring its novel approach to light, Haroun told Fortune at the company’s 2025 Augmented Intelligence Summit in New York.

Arizona is the only state in the country where a law firm is not required to be owned by lawyers, he said. Even still, there are technicalities. Eudia is not technically set up as a law firm, but a company that is a “provider of a law firm.”

Haroun told Fortune that the economics of AI can, for example, transform pro bono work, which he sees as “the reason people like me went to law school” in the first place.

Gary Hood, general counsel for Berkshire Hathaway-owned Duracell, said using Eudia has been a “no-brainer” for contracts and due diligence during M&A.

Haroun said some clients were spending hundreds of millions of dollars on outside counsel, and that’s where Eudia steps in.

And what about people? Eudia co-founder Ashish Agrawal likened the tools to a brand new employee that every company has to be patient with and incorporate “organically.” Human inputs, he told Fortune, are essential to AI working properly. —Nick Lichtenberg

Is an ‘AI winter’ coming?

As summer fades into fall, many in the tech world are worried about an AI winter

There’s a reason this phrase comes so naturally lately: We’ve already lived through several spells of waning enthusiasm and investment in AI over its 70-year history.

The most recent talk has been triggered by growing concerns among investors that AI technology may not live up to the hype surrounding it—and that the valuations of many AI-related companies are far too high. 

Is this chill in the air a passing breeze or the first hints of an impending Ice Age? A look at past AI winters may help. 

For example, there are clear parallels between the hype generated by today’s prominent AI figures and the competing camps working on the technology in the early days of the Cold War. 

There are also historical parallels for recent studies suggesting AI isn’t meeting expectations. In 1966, a committee commissioned by the National Research Council issued a damning report concluding that computer-based translation was more expensive, slower, and less accurate than human translation. 

You can guess what happened to research funding after that.

There are some key differences between then and now. Most significantly, today’s AI boom is not dependent on public funding—though government entities are becoming important customers.

And unlike in the very first AI winter, when such systems were mostly just research experiments, today’s AI is being widely deployed in businesses and homes.

Three years after ChatGPT’s debut, there are certainly a few autumnal signs here and there. But only time will tell if it is the prelude to a deep freeze in AI investment or a momentary cold-snap before the sun appears again. —Jeremy Kahn

More tech

Apple AI search tool in development. “World Knowledge Answers” reportedly arrives in the spring.

Instagram for iPadOS arrives. It only took 15 years, Meta!

xAI CFO Mike Liberatore departs. He joined Elon Musk’s AI startup in April and reportedly exited in late July.

Scale AI sues former employee for allegedly stealing trade secrets and sharing them with Mercor.

Tom Siebel steps down at C3 AI, to be replaced by Stephen Ehikian. The company reported a Q1 revenue drop of 19% from the same period a year ago.

Streameast shuts down. The world’s largest illegal sports streaming platform is knocked out by Egyptian law enforcement and others.

Mistral valued at €12B. The French AI firm (of Le Chat fame) is reportedly putting the finishing touches on a €2B investment.

Endstop triggered

A meme featuring a still of Dwayne "The Rock" Johnson from the film "The Smashing Machine" with the caption, "Google's antitrust attorneys on their way to the next case"

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Navigating Geopolitical Risk and Technological Indispensability

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The global AI chip market is a battleground of geopolitical strategy and technological innovation, with China’s demand for advanced semiconductors emerging as a critical focal point. For investors, the tension between U.S. export restrictions and China’s push for self-reliance creates a paradox: while geopolitical risks threaten to fragment markets, the indispensable nature of cutting-edge AI hardware ensures sustained demand. Nvidia, a leader in AI chip development, finds itself at the center of this dynamic, balancing compliance with its ambition to retain a foothold in China’s $50 billion AI opportunity [2].

Geopolitical Risk: The U.S. Export Control Conundrum

U.S. export restrictions have reshaped the AI chip landscape in China. In Q2 2025, Nvidia reported zero sales of its H20 AI chips to the region, a direct consequence of stringent export controls and the absence of finalized regulatory guidelines for its new licensing agreement [2]. This vacuum has allowed domestic competitors like Cambricon to surge, with the company’s revenue jumping 4,300% in the first half of 2025 [1]. The U.S. government’s 100% tariffs and revocation of VEU licenses have further fragmented global supply chains, compelling firms like AMD and Nvidia to develop lower-performance chips for China while TSMC shifts capital expenditures to the U.S. and Europe [1].

Yet, these restrictions have not eradicated demand for advanced AI hardware. China’s AI industry, supported by state-led investment funds and subsidized compute resources, is projected to grow into a $3–4 trillion infrastructure boom by 2030 [3]. The National Integrated Computing Network, a state-backed initiative, underscores Beijing’s commitment to building a self-sufficient ecosystem [4]. However, bottlenecks persist: limited access to EUV lithography and global supply chain integration remain significant hurdles [4].

Technological Indispensability: The Unmet Need for Performance

Despite China’s strides in self-reliance, the gap between domestic and U.S. semiconductor capabilities remains stark. Companies like Huawei and SMIC are closing this gap—Huawei’s CloudMatrix 384 and SMIC’s 7nm production expansion are notable advancements [1]. However, the performance of these chips still lags behind Nvidia’s Blackwell GPU, which offers unparalleled efficiency for large-scale AI training. This technological disparity has driven Chinese firms like Alibaba to invest in homegrown solutions, including a new AI chip, while still relying on U.S. technology for critical applications [2].

Nvidia’s recent development of the B30 chip—a China-compliant variant of the Blackwell GPU—exemplifies its strategy to navigate these challenges. By adhering to U.S. export restrictions while retaining performance, the B30 aims to secure market access in a landscape where even restricted chips are indispensable [3]. This approach mirrors the broader trend of “compliance-driven innovation,” where firms adapt to geopolitical constraints without sacrificing technological relevance.

Strategic Implications for Investors

For investors, the key lies in assessing how companies balance compliance with innovation. Nvidia’s ability to pivot to the B30 chip highlights its resilience, but the absence of H20 sales in Q2 2025 underscores the fragility of its China strategy [2]. Meanwhile, domestic players like Cambricon and SMIC offer high-growth potential but face long-term challenges in overcoming U.S. export controls and achieving parity with Western rivals [1].

The AI infrastructure boom, however, presents a universal opportunity. As global demand for advanced compute surges, firms that can navigate geopolitical risks—whether through compliance, localization, or hybrid strategies—will dominate. China’s push for self-reliance, while reducing its dependence on U.S. chips, also creates a fertile ground for innovation, with startups like DeepSeek optimizing FP8 formats for local hardware [1].

Conclusion

Nvidia’s experience in China encapsulates the dual forces shaping the AI chip sector: geopolitical risk and technological indispensability. While U.S. export controls have disrupted its access to the Chinese market, the company’s strategic adaptations—such as the B30 chip—demonstrate its commitment to maintaining relevance. For investors, the lesson is clear: the AI race is not just about hardware but about navigating a complex web of policy, innovation, and market dynamics. As China’s self-reliance drive accelerates, the winners will be those who can bridge the gap between compliance and cutting-edge performance.

Source:[1] China’s AI Chip Revolution: The Strategic Imperative and Investment Opportunities in Domestic Semiconductor Leaders [https://www.ainvest.com/news/china-ai-chip-revolution-strategic-imperative-investment-opportunities-domestic-semiconductor-leaders-2508/][2] Alibaba reportedly developing new AI chip as China’s Xi rejects AI’s ‘Cold War mentality’ [https://ca.news.yahoo.com/alibaba-reportedly-developing-ai-chip-123905455.html][3] Navigating Geopolitical Risk in the AI Chip Sector: Nvidia Remains a Strategic Buy Amid Chinese Restrictions [https://www.ainvest.com/news/navigating-geopolitical-risk-ai-chip-sector-nvidia-remains-strategic-buy-chinese-restrictions-2508/][4] Full Stack: China’s Evolving Industrial Policy for AI [https://www.rand.org/pubs/perspectives/PEA4012-1.html]



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How AI Can Strengthen Your Company’s Cybersecurity – New Technology

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Key Takeaways:

  • Using AI cybersecurity tools can help you detect threats
    faster, reduce attacker dwell time, and improve your
    organization’s overall risk posture.

  • Generative AI supports cybersecurity compliance by accelerating
    breach analysis, reporting, and regulatory disclosure
    readiness.

  • Automating cybersecurity tasks with AI helps your business
    optimize resources, boost efficiency, and improve security program
    ROI.

Cyber threats are evolving fast — and your organization
can’t afford to fall behind. Whether you’re in healthcare, manufacturing, entertainment, or another dynamic industry,
the need to protect sensitive data and maintain trust with
stakeholders is critical.

With attacks growing in volume and complexity, artificial
intelligence (AI) offers powerful support to help you detect
threats earlier, respond faster, and stay ahead of changing
compliance demands.

Why AI Is a Game-Changer in Cybersecurity

Your business is likely facing more alerts and threats than your
team can manually manage. Microsoft reports that companies face
over 600 million cyberattacks daily — far
beyond human capacity to monitor alone.

AI tools can help by automating key aspects of your cybersecurity strategy, including:

  • Real-time threat detection: With
    “zero-day attack detection”, machine learning identifies
    anomalies outside of known attack signatures to flag new threats
    instantly.

  • Automated incident response: From triaging
    alerts to launching containment measures without waiting on human
    intervention.

  • Security benchmarking: Measuring your defenses
    against industry standards to highlight areas for improvement.

  • Privacy compliance support: Tracking data
    handling and reporting to meet regulatory requirements with less
    manual oversight.

  • Vulnerability prioritization and patch
    management
    : AI can rank identified weaknesses by severity
    and automatically push policies to keep systems up to date.

AI doesn’t replace your team — it amplifies their
ability to act with speed, precision, and foresight.

Practical AI Use Cases to Consider

Here are some ways AI is currently being used in cybersecurity
and where it’s headed next:

1. Summarize Incidents and Recommend Actions

Generative AI can instantly analyze a security event and draft
response recommendations. This saves time, supports disclosure
obligations, and helps your team update internal policies based on
real data.

2. Prioritize Security Alerts More Efficiently

AI triage tools analyze signals from across your environment to
highlight which threats require urgent human attention. This allows
your staff to focus where it matters most — reducing risk and
alert fatigue.

3. Automate Compliance and Reporting

From HIPAA to SEC rules to state-level privacy laws, the
regulatory landscape is more complex than ever. AI can help your
organization map internal controls to frameworks, generate
compliance reports, and summarize what needs to be disclosed
— quickly and accurately.

4. Monitor Behavior and Detect Threats

AI can track user behavior, spot anomalies, and escalate
suspicious actions (like phishing attempts or unauthorized access).
These tools reduce attacker dwell time and flag concerns in seconds
— not weeks or months.

5. The Next Frontier: Autonomous Security

The future of AI in cybersecurity includes agentic systems
— tools capable of acting independently when breaches occur.
For instance, if a user clicks a phishing link, AI could
automatically isolate the device or suspend access.

However, this level of automation must be used carefully. Human
oversight remains essential to prevent overreactions — such
as wiping a laptop unnecessarily. In short, AI doesn’t replace
your human cybersecurity team but augments it — automating
repetitive tasks, spotting hidden threats, and enabling faster,
smarter responses. As the technology matures, your governance
structures must evolve alongside it.

Building a Roadmap and Proving ROI

To unlock the benefits of AI, your business needs a strong data
and governance foundation. Move from defense to strategy by first
assessing whether your current systems can support AI —
identifying gaps in data structure, quality, and access.

Next, define clear goals and ROI metrics. For example:

  • How much time does AI save in daily operations?

  • How quickly are threats identified post-AI deployment?

  • What are the cost savings from prevented incidents?

Begin with a pilot program using an off-the-shelf AI product. If
it shows value, scale into customized prompts or embedded tooling
that fits your specific business systems.

Prompt Engineering to Empower Your Team

Your teams can get better results from AI by using structured
prompts. A well-designed prompt ensures your AI tools deliver
clear, useful, business-ready outputs.

Example prompt:

“Summarize the Microsoft 365 event with ID
‘1234’ to brief executive leadership. Include the event
description, threat level, correlated alerts, and mitigation steps
— in plain language suitable for a 10-minute
presentation.”

This approach supports internal decision-making, board
reporting, and team communication — all essential for
managing cyber risks effectively.

Don’t Wait: Make AI Part of Your Cybersecurity
Strategy

AI is no longer a “nice to have”; it’s a core
component of resilient, responsive cybersecurity programs.
Organizations that act now and implement AI strategically will be
better equipped to manage both today’s threats and
tomorrow’s compliance demands.

The content of this article is intended to provide a general
guide to the subject matter. Specialist advice should be sought
about your specific circumstances.



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