Content Recommendation Engine Market Overview:

The global report on the Content Recommendation Engine Market predicts a 30% CAGR during the forecast period of 2018 to 2023, where the market valuation would touch a mark of around USD 6 billion. Market Research Future (MRFR) identifies the growing demand for personalized content as one of the major traction providers. Among others, rising competition in the market, demand from major companies who wish to bolster their online presence, rapidly developing e-commerce sites, and demand for search engine optimization are expected to provide substantial support to the market. The report highlights the growing trend of market also defines the market size, market characteristics and focuses on key developments, major players, changing trends, upcoming growth opportunities and Content Recommendation Engine Market forecast.

Content Recommendation Engine Market Segmentation:

Based on the component:

  • Solution

Based on organization size:

  • Small & medium enterprises
  • large enterprises

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Based on filtering approach:

  • Content-based filtering
  • Collaborative filtering
  • Hybrid filtering

Based on vertical:

  • Media entertainment & gaming
  • IT & telecommunication
  • Retailer and consumer goods
  • Education & training
  • BFSI
  • Healthcare & pharmaceuticals.


Content Recommendation Engine Market Regional Analysis:

Major players are from North America, which would go in favor of the North American market and help it retain its market presence during the forecast period. A growing need to analyze user data is expected to take the European market forward.

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Content Recommendation Engine Market Key Players:

  • Amazon Web Services (US)
  • Boomtrain (US)
  • Certona (US)
  • Curata (US)
  • Cxense (Norway)
  • Dynamic Yield (US)
  • IBM (US)
  • Kibo Commerce (US)
  • Outbrain (US)
  • Revcontent (US)
  • Taboola (US)
  • ThinkAnalytics (UK)

Industry News:

Recently, Bolo Indya, a Gurugram-based user-generated content platform, announced its success in raising $300,000 Pre-Series A1 round of funding that was getting helmed by India Accelerator, Eagle10 Ventures, and HNIs. The company is planning to invest the fund in enhancing the development of language evangelists, personalization and recommendation engine and improve the team to expand the portfolio and quicken the pace of product development.

In April 2020, CNN announced the acquisition of Canopy, an all-purpose content personalization structure that relies on on-device machine learning, human curation, and differential privacy to assist its readers discover things they prefer all the while putting a lid on their private information. This new acquisition is in sync with the news agency’s endeavors to stay abreast in a market that is primarily governed by Facebook and Apple. Experts believe that the startup will emerge as an anchoring part of CNN’s new projects.

The COVID-19 crisis has impacted several industries and the content management system is not any exception. A huge amount of data on the disease is getting churned out each minute and companies are trying to filter out the fake and hook the best to get more audience. This might help the market register better growth.

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1 Executive Summary

2 Scope Of The Report

2.1 Market Definition

2.2 Scope Of The Study

2.2.1 Research Objectives

2.2.2 Assumptions & Limitations

2.3 Markets Structure

3 Market Research Methodology

3.1 Research Process

3.2 Secondary Research

3.3 Primary Research

3.4 Forecast Model


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