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iotrecruiter · 3 years ago
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What Can You Expect from IoT Recruiting.
Our promise to you is that you’ll always know what to expect from us. When you submit your CV to IoT Recruiting, you’re going to find that you’re working with a company that is unlike any other search company, any other headhunter, any other IoT recruiter that you’ve ever worked with.
We use state of the art technology to find our clients and to vet our talent. At IoT Recruiting, we’re known for our expertise in the industry. We offer top career choices with globally known brands and companies who offer you growth and assistance in your career.
At IoT Recruiting we’ll help to prepare you for the interview process, offering you training and preparation for the interview, acceptance, resignation and even counter offers by your current employer so that you know what to do in any given situation.
IOT Recruiting provides you with tools and educational resources to help you to get where you want to be.
If you’re a job seeker who would like to speak with us, we’d love the opportunity to talk to you.
For More Information Visit My Website:- https://iotrecruiter.co/
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sanjithsanji · 5 years ago
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Goodworklabs is a premium Big Data Services Company focusing on Big Data Solutions, Big Data Analytics, Mobility & Security for better business
Visit : http://bit.ly/2GsWXMA
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47billion · 5 years ago
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47Billion feel fortunate to have worked with great people and organizations across the globe that helped our company earn this recognition as one of the top B2B companies on clutch.
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shanjannatithub · 3 years ago
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Have a business that needs a professional profile? Well for what are you waiting for contact us right now! Let's get in touch and make a modern, professional and an iconic company profile. We don't design crap and we are not looking for stars or ratings. If you have smile in your face that's what we are targeting for. So contact us now! Connect with us! Call Or WhatsApp 📱+91 9598771168 📱+971 506887690 📱+966 573066146 📱+61 466 962 952 📧 [email protected] Visit Site: https://shanjannatithub.com/ Your Outsourced Business Solutions Provider ✅📊📈 SHAN JANNAT IT HUB SOLUTIONS| THE GAME CHANGER #graphicdesign #influencer #digitalmarketingagency #NFTCommunity #businessgrowth #ecommerce #productphotography #eventmanagement #foodphotography #eventphotography #commercialprojects #videoproductioncompany #artificialintelligence #businessintelligence #advertisingagency #webdesign #businesssolutions #businessanalysis #smartpresentations #datascience #bigdatacompany #onlinepresence #ITsolutions #allinone #newtrend2022 #outsouroucebusinesssolutions #marketing #newbusinessera (at Sydney Opera House) https://www.instagram.com/p/CjeTNzFPXmi/?igshid=NGJjMDIxMWI=
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nexmagento · 6 years ago
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The internet has spread its field in a huge way and the devices, as well as objects, are interlinked with one another through it. IoT and Big Data are the most vital part of an industry, in which IoT is used to catch information from different sources, which is taken consideration by the Big Data analytics in order to get an understanding of the data.
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aegissofttech · 6 years ago
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Big Data is a huge arrangement of information. A Targeted Big Data Analytics helps to drive effective & more improved results. It is always better to execute Data Analytics only for a specific intent or just for enhancing the business operations.
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iotrecruiter · 3 years ago
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IOT recruiter | Career In Artificial Intelligence | Big Data Technologies
https://iotrecruiter.co/
We operate within a number of defined sectors across the IoT Markets.
(Digital Transformation)
Digital transformation is the integration of digital technology into all areas of a business, fundamentally changing how you operate and deliver value to customers.
(Machine Learning)
Machine learning (ML) is a type of artificial intelligence (AI) that allows software applications to become more accurate at predicting outcomes without being explicitly programmed to do so
(Industrial Automation)
Industrial automation is the use of control systems, such as computers or robots, and information technologies for handling different processes.
(Artificial Intelligence)
Artificial intelligence (AI) refers to the simulation of human intelligence in machines that are programmed to think like humans and mimic their actions.
(Big Data)
The definition of big data is data that contains greater variety, arriving in increasing volumes and with more velocity.
(Blockchain)
A blockchain is a decentralized, distributed, and oftentimes public, digital ledger consisting of records called blocks that are used to record transactions.
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sparklybarbariankoala · 4 years ago
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47billion · 6 years ago
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Big data has brought a revolution in the healthcare sector and now it has taken on cancer.
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enywulandari · 5 years ago
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Samples on How Data Mining Business Analytics Work Out
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Data mining business analytics is the next big theme that we need to discuss after the definition of data mining. Drawing some samples for the topic clearly gets you to the point with specific goals in mind.
Before coming to the samples, let’s draw differences between data mining and data analytics. Data mining means the process of taking out information from large data sets. While data analytics takes one step further. The term refers to using the information then analyzing it for further usage. Companies or organizations utilize inspection, cleaning, transformation and modelling of the information during data analytics. At the end of the day, data analytics produce beneficial information for companies or organizations to make decisions.
Data analytics is part of the overall business intelligence processes besides data mining, artificial intelligence and machine learning. We need to understand the data mining process before coming to data mining business analytics.
Broad steps in data mining process
The first phase is business understanding. Make sure you know what overall objectives of your business that will lead to a data mining problem and a plan. The strong comprehension of the goal will also lead to a good data mining algorithm. For example, business understanding on finding out what customers buy the most.
The second one is data comprehension. The phase includes data gathering, getting insights, and studying subsets. For instance, the supermarket wishes to apply a rewards program that hope customers input their phone numbers when purchasing. This will allow the supermarket to access their shopping archives.
Data preparation serves as the third phase. The most significant stage encompasses computer-language data taking and its shifting into a form. From there, there is a modelling phase that brings together mathematical models to look for patterns in the data. The next phase is evaluation that also includes evaluation and review. The companies need to ensure the last step answers their business purposes. As the examples lay out, the final answer is knowing a list of products customers mostly purchase. The last stage is deployment which refers to making a report as the simplest form or formulating a repeatable data mining process to occur often.
The correlations between data mining process and business analytics
Data mining business analytics can take some important points from the data mining process. Let us reuse the supermarket as the clear example. The data mining business analytics, in general, includes the following stages:
Classification
At this stage, available data are analyzed then moved into discernible categories. From there, companies can take conclusions. In regard to the supermarket, the manager of the supermarket may utilize classification to group the types of groceries bought by the customers. For example, produce, meat, bakery, etc. The store owners can later learn more about the customers’ buying preferences.
Clustering
By essence, clustering looks similar to classification. Clustering, however, is less structured, providing simpler option for data mining. For example, the supermarket owner can categorize the products into food and non-food items.
Affiliation rules
Also known as tracking patterns, specifically based on linked variables. For instance, customers who buy specific items will likely to buy another second, related product. This will cause the store to know what will customers purchase next.
Regression analysis
Regression is used to identify the relationship between variables in a set. From there, the supermarket manager, for example, can plan and model a specific variable. Thus, the manager can come up with price points based on availability, consumer demand, and their rivalry.
Unusual pattern projection
Sometimes, the supermarket manager needs to study anomaly consumer behavior so that they can provide products when the unusual season strikes. For example, the manager can offer products during the first week in March that sees most male consumers. This paints an unusual picture that mostly welcomes female shoppers throughout the weeks in the month.
In case your business needs some assistance on data mining business analytics, rely on our expertise for the field. Simply hit the Contact page for further get-together talk and discussion with us.
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enywulandari · 5 years ago
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Five Sectors with Abundant Data Mining Uses
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Data mining uses are widely-applied in at least five sectors in today’s business and service-based fields. The technological advance greatly assists companies and institutions that target their activities to satisfy customers.
Data mining uses come from unprecedented huge number of data that emerge every second in today’s internet-driven era. Data analysis stems from transactional statistic, comment, click, and view in the internet. Below highlights data mining uses in at least five segments:
1.    Healthcare
To analyse big data, IT expert at a hospital deploys multi-dimensional databases, machine learning, soft computing, data visualization and statistics. As the results are available, the hospital or health institutions can use them for service improvement.
For example, they can use the data for calculating number of patients in each category. The same holds true for formulating most proper health services for patients. Data mining can also be used for detecting fraud and abuse.
2.    Retail
In the retail industry, market basket plays a critical role. The area helps retailers, managers, business owners, and entrepreneurs to study buyer behaviour. In particular, this point focuses on market basket analysis.
This refers to a modelling technique that stems from a theory that says if we buy a specific group of goods then we are more likely to purchase another group of products or services.
They can apply the analysis result for laying out goods at stores. Moreover, they can apply differential analysis comparison of results among various stores to make their stores standing out.
3.    Education
In this sector, a new term emerges, Educational Data Mining. This deals with method development to find out knowledge that stems from educational environments. Educational managements expect the Educational Data Mining to provide the most proper student future learning attitude.
As such, the institutions can emphasize on what to teach and how to teach to their students. They can do research for innovative techniques to teach their pupils.
4.    Manufacturing
Manufacturing engineering is an important area within manufacturing that encompasses complicated techniques for multi-layered production processes. Data mining uses are applied for discovering patterns in the processes. It can be used for extracting the connection between product architecture, product portfolio, and customer needs data. Some outcomes from the techniques are cost prediction, product development period and relationships that bind some tasks.
5.    Customer Relationship Management
Data mining uses can help managers and business players to net new customers and keep existing ones loyal. By studying their purchasing behaviours, they can create customer-based strategies. They can launch products that “read” their customers’ necessities. This is where data mining plays a part in customer relationship maintenance.
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nexmagento · 6 years ago
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Decision making is an imperative aspect of businesses, and technologies like Machine Learning are enhancing it further. Organizations and Software Development companies are making more and more use of ML-based Prescriptive Analytics.
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