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What type of services Sri Cloud Solutions offers?

Sri Cloud Solutions offers a full spectrum of cloud services to help maximize the benefits of cloud. Further, we know cloud is more than a technology solution, so our solutions encompass the workforce and culture change needed for lasting success.

1.Cloud strategy and change management

Design your value-driven journey using our full suite of services, including industry insights, business model strategies and change management to accelerate ROI and performance.

2.Cloud migration

Migration to cloud is vital for companies looking to achieve digital transformation and exploit growth opportunities while preparing for disruption.

3.Cloud management & optimization

Manage cloud tools and service providers with automated compliance, monitoring, optimization and governance.

4.Cloud engineering and automation

Deliver custom cloud solutions using cloud native development and application modernization.

5.Infrastructure services

Leverage hybrid cloud or reinvent your networks and workplace experience to accelerate cloud’s value.

6.Cloud security

Protect your IT estate with our cloud security services.

7.Data on cloud

Create industry and function-specific data and AI insights and intelligence for businesses through Cloud industry-specific data models.

8.Sustainability with Cloud

Leverage our circular economies approach to enabling quick decisions for a sustainable cloud journey.

9.Cloud platforms

Move your ERP to cloud and leverage SaaS to drive performance and innovation.

Why your working process is very simple?

When it comes to building a successful business, there are a number of factors that come into play. One of the most important? Business process management.

A business process is a series of actions or steps your organization takes to achieve a particular business goal. Business process management is the practice of continually reviewing and improving each business process within your organization.

1.Analysis of current workflow

There are a lot of businesses that are not versed with their work process. That’s why, it is necessary to prepare a list of each and every process and then a deep analysis. We are required to develop a solid understanding of every department your business deals in. Through this, we will get an idea of the status of our work operations, and what changes can be done to make them better.

2.Finding key areas of focus

Once we are done with the analysis of the current workflow, it’s time to identify some other key areas which need prime attention. We always keep an eye on the factors that can or that are impacting the current workflow. We Try to remove the loopholes and create an effective version of your work process.

3.Split the process

The next step is breaking the process into smaller parts, so as to make it manageable. The simpler the work process, the better is the business operation. So, it would be great if we break the business operations into discrete parts, and aim for the desirable outcome.

4.Prioritize work

After the work division, we rank the work in the order of their importance. By doing this, we can make your workflow well-maintained, and will make you reap the splendid outcomes at the end of each process.

5.Proper documentation

In reality, it is impossible to initiate every task and process from our memory. We are required to lay out every step mentioned in the process for the completion of work effectively. It would be wonderful if we note down the sequential steps on the piece of a paper. Through this, we will never miss out any essential step in the work process.

6.Automation of work process

Today, the businesses are using work management software solutions for tracking and managing their workflow. It is a common fact that the process of getting a project delivered has a risk of data errors associated with it. But, the good news is that there are several tools and softwares available, such as Jira, SharePoint, etc. that are useful in management of the work flows and processes. These tools and softwares provide advanced features that are effective in simplifying the business process.

7. Testing new workflow

The best way to know the effectiveness of our new workflow is to test it. For this, we have to check how it will function in the live workplace environment. For instance, we can apply the new workflow in our upcoming project, and evaluate how every element of the process works.

Once we checked the new workflow, you should make necessary improvements that we find while testing. After that, we are free to implement it at your workplace.

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How to benefit from Machine Learning?

Machine learning (ML) extracts meaningful insights from raw data to quickly solve complex, data-rich business problems. ML algorithms learn from the data iteratively and allow computers to find different types of hidden insights without being explicitly programmed to do so. ML is evolving at such a rapid rate and is mainly being driven by new computing technologies.

Machine learning in business helps in enhancing business scalability and improving business operations for companies across the globe. Artificial intelligence tools and numerous ML algorithms have gained tremendous popularity in the business analytics community. Factors such as growing volumes, easy availability of data, cheaper and faster computational processing, and affordable data storage have led to a massive machine learning boom. Therefore, organizations can now benefit by understanding how businesses can use machine learning and implement the same in their own processes.

10 Business Benefits of Machine Learning

ML helps in extracting meaningful information from a huge set of raw data. If implemented in the right manner, ML can serve as a solution to a variety of business complexities problems, and predict complex customer behaviors. We have also seen some of the major technology giants, such as Google, Amazon, Microsoft, etc., coming up with their Cloud Machine Learning platforms. Some of the key ways in which ML can help your business are listed here -


1.Customer Lifetime Value Prediction

Customer lifetime value prediction and customer segmentation are some of the major challenges faced by the marketers today. Companies have access to huge amount of data, which can be effectively used to derive meaningful business insights. ML and data mining can help businesses predict customer behaviors, purchasing patterns, and help in sending best possible offers to individual customers, based on their browsing and purchase histories.

2.Predictive Maintenance

Manufacturing firms regularly follow preventive and corrective maintenance practices, which are often expensive and inefficient. However, with the advent of ML, companies in this sector can make use of ML to discover meaningful insights and patterns hidden in their factory data. This is known as predictive maintenance and it helps in reducing the risks associated with unexpected failures and eliminates unnecessary expenses. ML architecture can be built using historical data, workflow visualization tool, flexible analysis environment, and the feedback loop.

3.Eliminates Manual Data Entry

Duplicate and inaccurate data are some of the biggest problems faced by THE businesses today. Predictive modeling algorithms and ML can significantly avoid any errors caused by manual data entry. ML programs make these processes better by using the discovered data. Therefore, the employees can utilize the same time for carrying out tasks that add value to the business.

4.Detecting Spam

Machine learning in detecting spam has been in use for quite some time. Previously, email service providers made use of pre-existing, rule-based techniques to filter out spam. However, spam filters are now creating new rules by using neural networks to detect spam and phishing messages.

5.Product Recommendations

Unsupervised learning helps in developing product-based recommendation systems. Most of the e-commerce websites today are making use of machine learning for making product recommendations. Here, the ML algorithms use the customer's purchase history and match it with the large product inventory to identify hidden patterns and group similar products together. These products are then suggested to customers, thereby motivating product purchase.

6.Financial Analysis

With large volumes of quantitative and accurate historical data, ML can now be used in financial analysis. ML is already being used in finance for portfolio management, algorithmic trading, loan underwriting, and fraud detection. However, future applications of ML in finance will include Chatbots and other conversational interfaces for security, customer service, and sentiment analysis.

7.Image Recognition

Also, known as computer vision, image recognition has the capability to produce numeric and symbolic information from images and other high-dimensional data. It involves data mining, ML, pattern recognition, and database knowledge discovery. ML in image recognition is an important aspect and is used by companies in different industries including healthcare, automobiles, etc.

8.Medical Diagnosis

ML in medical diagnosis has helped several healthcare organizations to improve the patient's health and reduce healthcare costs, using superior diagnostic tools and effective treatment plans. It is now used in healthcare to make almost perfect diagnosis, predict readmissions, recommend medicines, and identify high-risk patients. These predictions and insights are drawn using patient records and data sets along with the symptoms exhibited by the patient.

9.Improving Cyber Security

ML can be used to increase the security of an organization as cyber security is one of the major problems solved by machine learning. Here, Ml allows new-generation providers to build newer technologies, which quickly and effectively detect unknown threats.

10.Increasing Customer Satisfaction

ML can help in improving customer loyalty and also ensure superior customer experience. This is achieved by using the previous call records for analyzing the customer behavior and based on that the client requirement will be correctly assigned to the most suitable customer service executive. This drastically reduces the cost and the amount of time invested in managing customer relationships. For this reason, major organizations use predictive algorithms to provide their customers with suggestions of products they enjoy.

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