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Outrank the competition with machine learning solutions

Machine learning solutions are transforming business capabilities. Re-imagine what's possible, and leave the competition behind.

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Gain a competitive advantage using machine learning applications

The use of machine learning in business is increasing rapidly. Smart companies are harnessing the value of their data in machine learning models to reduce costs, optimize processes, and increase customer satisfaction.

Machine learning can be used across practically any sector or industry

Machine learning can support your business in many ways:

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Increase sales

49% of customers are willing to purchase more frequently when machine learning is present.

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Improve productivity

Machine learning technologies are projected to increase labor productivity by up to 40% by 2035.

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Analyze large volumes of data

ML gives apps the ability to learn and improve over time. It is extremely adept at processing large volumes of data quickly and identifying patterns and trends.

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Improve customer satisfaction

75% of enterprises using AI and machine learning tools enhance customer satisfaction by more than 10%.

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Machine learning projects don't have to be complex – we’ll help you choose the right solution

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Data Engineering

Prepare your data to make the most of AI algorithms.

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Data Science

Uncover meaningful insights to improve your product or service.

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Recommender Systems

Create a personalized experience for every user thanks to an accurate recommendation system.

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Natural Language Processing

Build natural interactions with your users and recognize patterns in unstructured data.

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Computer Vision

Automate difficult decision-making processes based on images.

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Audio Recognition

Identify patterns in audio data, enabling voice communication using a range of devices.

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What is machine learning?

Machine learning solutions open your business up to a wide variety of new opportunities. You can use machine learning models to personalize your customer experience, automate processes, gain deeper insights with advanced analytics, and deploy digital solutions that will change the way customers interact with your product.

Machine learning is widely applied to business problems, reducing costs and increasing customer satisfaction. ML algorithms can be used in applications across practically any industry or sector – from eCommerce to finance, healthcare to education, and cybersecurity to charity services.

Why do you need machine learning?

Machine learning solutions open your business up to a wide variety of new opportunities. You can use machine learning models to personalize your customer experience, automate processes, gain deeper insights with advanced analytics, and deploy digital solutions that will change the way customers interact with your product.

Machine learning is widely applied to business problems, reducing costs and increasing customer satisfaction. ML algorithms can be used in applications across practically any industry or sector – from eCommerce to finance, healthcare to education, and cybersecurity to charity services.

What are the best examples of machine learning?

Machine learning solutions are being used in various business sectors – both B2B and B2C companies can benefit from it.

Amazon uses an ML-powered recommendation engine that drives 35% of its total sales. Thanks to the AI-Bot Harry, AXA saves roughly 17,000 man-hours a year. At the same time, Vodafone noticed a 68% improvement in customer satisfaction after introducing its machine learning chatbot TOBi.

American Express and PayPal use machine learning models to quickly analyze millions of transactions and data points, giving them real-time fraud detection capabilities. These advanced digital tools allow customers to resolve problems with suspicious transactions almost instantly.

Researchers based at UCLA managed to identify cancer cells with greater than 95% accuracy after equipping a special microscope with machine learning algorithms.

Where can ML solutions be used?

Machine learning models are used in a range of industries. Businesses are using models to improve performance through process automation, predictive analytics, and anomaly detection, among a variety of other use cases.

For example, eCommerce and marketing leverage ML algorithms for their recommendation engines to provide better customer experiences. Hedge funds use ML tools to forecast stock prices, while insurance companies use advanced techniques to calculate risk more accurately. Banks and other financial institutions are able to detect suspicious transactions using fraud detection models. Medical companies use digital tools and deep learning approaches to diagnose medical conditions based on sets of symptoms.:

Are machine learning services right for your business?

Machine learning projects are often high-risk projects due to their complex dependencies on data. That is why top companies offering machine learning services conduct feasibility studies to reduce the risk before engaging in a project. In this way, they ensure that sufficient data is available and that predicted outcomes are in line with the project goals.

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