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Why Are Analysts Bullish on Informatica Inc. (INFA) Right Now?

We recently compiled a list of the 10 Best Machine Learning Stocks According to Analysts. In this article, we are going to take a look at where Informatica Inc. (NYSE:INFA) stands against the other machine learning stocks.

The AI boom of the last two years has pushed mathematical computing technologies to the forefront of Wall Street and the technology industry. In its simplest form, AI is a set of programming instructions that allow software to learn from existing data and use this learning to generate new outputs using logic and other parameters. Machine learning is a subset of AI, and it uses algorithms to autonomously learn from data to provide outputs for specific use cases. Machine learning is a subset of AI, meaning that while all machine learning is AI, not all AI applications are machine learning.

Some ways in which engineers use machine learning are via classification, clustering, regression, supervised, unsupervised, and associated learning algorithms. AI, on the other hand, also involves technologies such as artificial narrow AI, general AI, and super AI. Right now, only narrow AI technologies are available, and these are limited to specific abilities such as ChatGPT being able to generate only text based outputs.

For stocks, this means that AI stocks and machine learning stocks are nearly the same. On the software side of the AI industry, those that develop AI technologies are also heavily in machine learning. On the hardware side, the same firms cater to the computational needs of AI and ML companies. It also means that for a variety of businesses, machine learning is often more suitable since it allows them to develop a customized and autonomous learning approach. And like AI, the industry is relatively nascent. Market research shows that the machine learning industry was worth $15.1 billion in 2021. From 2022 until 2029, the sector is expected to grow at a compounded annual growth rate (CAGR) of 38.8% and be worth $210 billion.

This multi billion dollar valuation for the machine learning industry benefits from the technology’s ability to adapt itself to custom business use cases. Research from McKinsey sheds light on some of these, and it also shares details about rapid cost improvements that machine learning users are experiencing. Starting from the use cases, include capital markets and education. In capital markets, machine learning can help financial institutions avoid asset mispricing losses of as much as $950 million. By using machine learning and its neural network subset, banks can reduce operational costs and portfolio risk, increase valuation accuracy, and speed up risk and valuation calculations compared to traditional Monte Carlo and risk valuation approaches.

In the education industry, an online education provider used a machine learning model to improve its student drop out (attrition) rates. The model allowed the university to identify three additional student archetypes that accounted for 70% of the students likely to leave their courses. Crucially, traditional linear models were unable to identify these groups, and machine learning enabled the university to develop a targeted approach to reduce attrition. Finally, image classification systems powered by an advanced form of machine learning called deep learning are rapidly improving their costs. Data from Stanford University shares that training costs of these systems dropped by 64% between 2015 and 2021 while training times improved by 94%.

Evaluating machine learning stock performance is trickier since there are no exclusive ETFs or stock indexes that focus only on machine learning stocks. Therefore, we’re left to use AI stocks as a proxy to also evaluate machine learning stock performance. As part of our research for this piece, Insider Monkey analyzed the year to date price performance of 39 AI stock ETFs. On average, these funds have gained 13.26% year to date while on median their price gains are 11.47%. Their performance ranges between -2.53% to 32.48%.

On the hardware side, semiconductor stocks are the primary beneficiaries of the AI surge. While their returns have stunned investors, there is some information that suggests that the sector might be overvalued. Data compiled by Aswath Damodaran shows that semiconductor stocks have an EV/EBITDA ratio of 31.6, which is the highest among all industries tracked. These stocks will also benefit from increased attention from the US government, which has earmarked $280 billion for research and production through the CHIPS and Science Act of 2022. For AI software companies, valuing them means dividing them by their size and operations. By size, the mega cap stocks have an early mover advantage in the machine learning industry and are generating as much as $4.4 billion in revenue.

Dividing them by operations means that there are AI companies that offer cloud capacity by buying GPUs and those that use this capacity. For the former, the CFO of the world’s biggest GPU provider shared in May 2024 that for “every $1” spent on AI infrastructure, “cloud providers have an opportunity to earn $5 in GPU instant hosting revenue over four years.”

With these details in mind, let’s take a look at the top machine learning stocks according to analysts.

Our Methodology

To make our list of the best machine learning stocks, we first compiled an initial list of 150 stocks from three AI and robotics ETFs. Then, repeated entries, robotics, and firms that either do not significantly use machine learning in their operations or operate in unrelated industries were removed. This led to a final list of 78 stocks which were ranked by their average analyst share price target upside. Out of these, the stocks with the highest upside were chosen.

We also mentioned the number of hedge funds that had bought these stocks during the same filing period. Why are we interested in the stocks that hedge funds pile into? The reason is simple: our research has shown that we can outperform the market by imitating the top stock picks of the best hedge funds. Our quarterly newsletter’s strategy selects 14 small-cap and large-cap stocks every quarter and has returned 275% since May 2014, beating its benchmark by 150 percentage points (see more details here).

A business executive in a modern office looking over reports detailing artificial intelligence.

Informatica Inc. (NYSE:INFA)

Number of Hedge Fund Investors  in Q1 2024: 24

Analyst Average Share Price Target: $38.33

Upside: 41%

Informatica Inc. (NYSE:INFA) is a California based data analytics services provider that leverages AI and machine learning in its platform. Informatica Inc. (NYSE:INFA) allows customers to deploy serverless machine learning models at scale, through products such as its CLAIRE engine. Informatica Inc. (NYSE:INFA) has been playing the current downturn in the cloud industry rather smartly. This downturn has seen large and small firms fail to meet analyst expectations of revenue and recurring revenue growth. During this tumultuous time period, Informatica Inc. (NYSE:INFA) has started to diversify its customer support to cover even those products that are self managed. It has also grown its migration portfolio, which allows businesses to shift their cloud needs, by introducing products like the PowerCenter Cloud Edition. Consequently, Informatica Inc. (NYSE:INFA)’s shares have weathered the storm and are down by a modest 6% year to date, fueled in part by the end of speculation about its acquisition by Salesforce.

As for its AI and machine learning initiatives, here’s what Informatica Inc. (NYSE:INFA)’s management shared during its Q1 2024 earnings call:

Our efforts to assist customers with their AI strategy or GenAI strategy is divided into two categories, Informatica for GenAI and GenAI from Informatica, both available from the IDMC platform. In the area of Informatica for GenAI, we are already well underway with our new API and AMP integration services where customers can use services for a simple no-code way to add advanced GenAI capabilities to existing IDMC implementation.

This makes it easier for developers to use different GenAI models, us being now the Switzerland of models, and let customers update their apps with GenAI capabilities without changing any code. Our GenAI solution with built-in software development lifecycle and API governance drives better control, performance and scalability, ensuring GenAI is ready for complex business needs. This is a fast-moving space as we innovate and our customers use IDMC capabilities for their GenAI use cases. Now, in the area of GenAI from Informatica, we believe this is a game-changer. To support our customers’ AI journey, we have developed CLAIRE GPT, a transformational chat interface to do all of the complex data management tasks through NLP in a user-friendly format that will revolutionize and democratize data management throughout the enterprise.

Overall INFA ranks 6th on our list of the best machine learning stocks to buy. You can visit 10 Best Machine Learning Stocks According to Analysts to see the other machine learning stocks that are on hedge funds’ radar. While we acknowledge the potential of INFA as an investment, our conviction lies in the belief that AI stocks hold greater promise for delivering higher returns, and doing so within a shorter timeframe. If you are looking for an AI stock that is more promising than INFA but that trades at less than 5 times its earnings, check out our report about the cheapest AI stock.

READ NEXT: Analyst Sees a New $25 Billion “Opportunity” for NVIDIA and Jim Cramer is Recommending These 10 Stocks in June.

Disclosure: None. This article is originally published at Insider Monkey.

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Fast forward a year and Amazon’s new CEO Andy Jassy described generative AI as a “once-in-a-lifetime” technology that is already being used across Amazon to reinvent customer experiences.

At the 8th Future Investment Initiative conference, Elon Musk predicted that by 2040 there would be at least 10 billion humanoid robots, with each priced between $20,000 and $25,000.

Do the math. According to Musk, this technology could be worth $250 trillion by 2040.

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  • Larry Ellison — through Oracle, is spending billions on Nvidia chips and partnering with Cohere to embed generative AI across Oracle’s cloud and apps.
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