June 21, 2019 | Big Data | No Comments
It is an inevitable fact and goes without saying that on account of the very nature of data, technology, and analytics that is always at odds for different enterprises, optimal Big Data Deployment strategy may sing a different tune for other business. Period!
This fact-based truth opens the door for strategies, customized only for particular organizations with the pre-conceived motive to deploy Big Data technologies minus any kind of fall out or interruption.
Sounds soothing to the ears?
Note: Before kicking off with the ‘deployment’ process, it comes as a de rigueur step to conduct a detailed evaluation of integration, governance, security, processes, and interoperability, in a bid to reap the pleasure of a seamless Big Data implementation.
Let’s dig deep and get to the pulse of new age Big Data architecture and its deployments know-how for a better understanding.
Age of Big Data Technology
Thanks to our good fortune, we live and breathe in an era of Big Data Analytics, where business enterprises go that extra mile to find ways to harness volumes of unstructured data efficiently.
Business organizations these days take the helping hand from analytics to convert data into valuable insights to pave the way for enhanced operations and informed business decisions.
Riding on the back of intelligent algorithms, organizations give birth to smart data, which can evaluate patterns and signals to help business leaders make informed decisions and thereby cut down costs to perk up profit margins.
However, such an objective is not a walk in the park and requires the assistance of requisite technology within Big Data Environments.
Taking the plunge in the absence of required knowledge and an infallible Big Data strategy is bound to witness a dead-end.
Imperfect deployment road-maps and wrong decisions which can drain out the resources and budget and adversely impact the business performance further gives clarity on the gravity of the situation.
So it is important to understand the Big Data Deployment framework for effective execution.
Big Data Deployment Framework
Out of the lot, there are certain primary factors that manipulate the mammoth decision of employing Big Data technology in a business enterprise.
Such factors include:
• The existence of traditional/non-traditional data in the system
• Presence of low latency data
• Delving into new analytics algorithms
• The requirement for real-time insights
Pillars of Big Data architecture- Analytics, Data, and Technology
There can be no objection to the fact that ‘Data’ is the very heart of technology, analytics, and strategic decision making.
Based on the volume, shape, and latency the type of Big Data technology to be deployed in a company is determined.
Precise mapping of data properties, frequencies, and sources are tagged as significant angles while devising the development strategy.
Analytics is quite likely to include cultivating and operationalizing predictive, descriptive, text mining leveraging data sources.
To make the most of analytics, an amalgamation of traditional technologies and a distributed environment for Big Data can possibly the best road open for some companies to accomplish their business objective.
For most business leaders, it is relatable when we quote that ‘the present infrastructure in many companies is limited to minor data problems’.
Close examination of the existing hardware and software can bridge the gap between tradition and modern approach with ace technologies and predominant systems.
Finally Big Data Integration
The whole idea behind the smooth integration of Big Data technologies in the present infrastructure is to achieve no disruption, zero business downtime, and no cost overruns.
For such integration, numerous databases, nodes, and clusters are required to be explored.
At a business enterprise level, cross-project inter-departmental and multi-platform integration of Big Data technologies must be decided at an early stage, since this can be a difficult task to complete later on.
Like it or not, a comprehensive, rigorous and importunate decision-making is the absolute need of the hour for deploying Big Data Technologies in any company.
Furthermore, the strategy should make amends with the changing landscape of Big Data technologies.
The deployment strategy is more than a certain piece of information jotted down on a piece of paper.
At SPIN, we understand the mechanism to dispose of Big Data strategy within the present infrastructure of a company in order to bring to pass maximum impact (in a positive way).
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