CVs are outdated, Portfolio is the future

Who made the CV for the first time in the world?Interestingly, it was the same person who conceptualized the flying machines. Leonardo de Vinci. He made a CV 600 years back to offer his services to the Duke of Milan. The famous painter highlighted his skills in building bridges, trenches, mines, weapons and sculpture in his CV. Then it became a trend. Artists used to prepare CVs to present to the lords of the countries they traveled to.

The Modern CV
In 1937 Napoleon Hill published steps of success in a book “Think and Grow Rich”. One of the key steps was to prepare a killer resume. That is how modern CVs were formalized. After the advent of computers, the format and structure of the CVs also got standardized to a large extent.

Before the liberalization of the Indian economy, people used to follow one career, one job model. Hence there was no need to prepare a CV more than once in a career. After the liberalization in the 1990s, people started changing jobs. The model changed to “one career, multiple jobs”. Each job change required an updated CV. Hence the importance of CV grew multifold. The entire recruitment business started running on CVs.

Making CV Effective
Apart from the candidate, recruiter and hiring manager are the primary consumers of CV. The shape and the form of CV needs to be adjusted for these two key stakeholders to be effective. Here are some of the pointers candidates must remember to make CV more effective.

Prepare CV like an Advertisement
Guess how many CVs come for a position? On an average, each job attracts 250 resumes. Out of these resumes, 88% of the resumes are irrelevant. These resumes are screened within 2 to 5 hours. Which means each resume gets less than 30 seconds on an average. Hence, CV must be prepared like a 30 second advertisement for the target audience.

Moderate the Length
When you search for something on google, how many times you go to the results beyond the first page. Research shows that the second page click through ratio is less than 1 per cent. That is why it is important to have all the key information of your CV in the first page itself.

Structure as pe eyeballs
Nielsen Norman Group figured out that when people look at the screen they read content in an F pattern. The most attention goes to the first line, then people move vertically down and read with lesser attention, making eye heat maps in the shape of an F. Knowing this, candidates should structure their CVs in such a manner that key highlights are covered under the F map.

Customized for a Job
When Leonardo de Vinci wrote his resume for the Duke of Milan, He mentioned only those things which were important for the Duke of Milan at that time. He mentioned what he could do for the Duke instead of quoting all his achievements and skills. Candidates must customize their resume for the job instead of dumping all that they know about themselves.

The need for PortfolioAs the world is going digital, some fundamentals are changing. These fundamental changes will pave the path for portfolios. Here are the two important drivers for portfolios.

Multiple Jobs, Multiple Careers
Society is moving away from the concept of one career. More so, with the advent of the Gig economy, people have realized that they have multiple talents which they can put to use for making money. TED started promoting this idea. TED asks you to write your skill or expertise in your introduction instead of designation. If you see LinkedIn or Twitter profiles, you see multiple talents like |Author| Speaker| Business Leader| Inventor| Social Media Expert| Dancer| Standup Artist|. Can you afford to have one resume for all the talents?

Support your claims
When CV templates are available, then people can copy content as well. Anyone can claim to have any skill. This has brought down the credibility of CVs. Hence recruiters need CVs backed by evidence. They prefer software developers to showcase their projects on platforms like Github, Designers to showcase their portfolios on platforms like dribble, Experts to showcase their knowledge on platforms like quora or passing certifications by clearing skill assessments on LinkedIn.

Easily Searchable

As the world is going digital, there are digital tools which are getting developed. Search is becoming more and more powerful. It is imperative for each job seeker to manage their own online presence with proper keywords and linkage to evidence of claims made on the front page (CV). One can make this happen by preparing their own website or web presence. These may include webpages, supporting projects, infographics and videos.

CVs in their current shape and form are going to be outdated. They will emerge as Portfolios. The first movers will have a definitive advantage as digital inventory in the digital space is limited. This is the time to wake up, if you do not want to appear on the second page of the google search.

SAP Analytics Cloud: Planning C_SACP_2215 Dumps

To pass the SAP C_SACP_2215 exam confidently, you should choose Passcert appropriate SAP Analytics Cloud: Planning C_SACP_2215 Dumps that contain all the required information of the C_SACP_2215 exam. It will ensure you pass your SAP Certified Application Associate – SAP Analytics Cloud: Planning exam easily. Passcert SAP Analytics Cloud: Planning C_SACP_2215 Dumps would give you comprehensive and concise information about every topic of SAP C_SACP_2215 Exam. After preparing from Passcert SAP Analytics Cloud: Planning C_SACP_2215 Dumps, you can easily pass SAP C_SACP_2215 exam on the first attempt.

SAP Certified Application Associate – SAP Analytics Cloud: PlanningThe “SAP Certified Application Associate – SAP Analytics Cloud: Planning” certification exam verifies that the candidate possesses the fundamental and core knowledge required of the SAP Analytics Cloud Planning Consultant profile. This certification proves that the candidate has an overall understanding and technical skills to participate as a member of a project team. This certification is recommended as an associate level qualification. The certificate issued for passing this exam will be valid for 5 years.

Exam DetailsExam Code: C_SACP_2215Exam Name: SAP Certified Application Associate – SAP Analytics Cloud: PlanningExam: 80 questionsCut Score: 65%Duration: 180 minsLanguages: English

Exam TopicsIntroduction, dimensions, and planning models> 12%Core planning functionality> 12%Forecasting, collaboration, and process control> 12%Data actions and allocation processes> 12%Integrated Planning Overview & SAP BW Integration> 12%SAP BPC Integration, Analytic Applications, and Microsoft Excel Integration> 12%SAP S/4HANA Integration> 12%

Share SAP Analytics Cloud: Planning C_SACP_2215 Sample Questions1. Where can you use time series forecasting in SAP Analytics Cloud? Note: There are 2 correct answers to this questionA.Story tableB.Bar chartC.SAP Analytics Cloud, add-in for Microsoft OfficeD.Smart PredictAnswer: A, D

What can you do with a data action trigger in an analytic application? Note: There are 2 correct answers to this questionA.Use the onBeforeExecute eventB.Use the onAfterExecute eventC.Execute the data action trigger at runtimeD.Execute the data action trigger at design timeAnswer: A, C
What can you do in a value driver tree with only a BI user role? Note: There are 2 correct answers to this questionA.Filter the date dimension at node levelB.Add a cross calculation to a specific nodeC.Nest value driver treesD.Enter data into the value driver treeAnswer: C, D
To import a display attribute from SAP Business Warehouse into an SAP Analytics Cloud dimension, in which BW object must the display attribute be included?A.CharacteristicB.QueryC.InfoProviderD.Data SourceAnswer: B
When you configure a planning area in a model, what can the planning area be based on? Note: There are 2 correct answers to this questionA.Data access controlB.Data LockingC.Cell lockingD.Input controlsAnswer: A, B
When importing transaction data from SAP Business Warehouse to SAP Analytics Cloud, what is the maximum?A.10000000 cellsB.2000000000 rowsC.100000000 cellsD.800000 rowsAnswer: D

Adobe Commerce Front-End Developer Expert AD0-E710 Dumps

Have you been seeking valid AD0-E710 Dumps to ensure your success in Adobe Commerce Front-End Developer Expert exam? Passcert provides the most up-to-date Adobe Commerce Front-End Developer Expert AD0-E710 Dumps to assist you in preparing for the Adobe AD0-E710 exam. It covers all of the real questions and answers that will appear in the upcoming Adobe AD0-E710 exam. The Adobe Commerce Front-End Developer Expert AD0-E710 Dumps are compiled according to the latest exam syllabus to ensure your success. You will be able to experience the real exam scenario by practicing with Adobe AD0-E710 Dumps. As a result, you should be able to pass your Adobe AD0-E710 exam on the first try.

AD0-E710 Exam Overview – Adobe Commerce Front-End Developer ExpertThe Adobe Certified Expert – Frontend Developer exam is for developers who have expertise in frontend development in Magento 2. The exam is designed to validate the skills and knowledge of Magento 2 in the Areas of: Magento 2 Theme Management, Theme Hierarchy, Layout and Xml changes, knowledge about templates, styles, Java Script, widgets, knockout Js, Admin Configuration and Page builder, Less files compilation, Grunt and Composer.

Exam DetailsExam number: AD0-E710Exam name: Adobe Commerce Front-End Developer ExpertAvailable languages: EnglishNumber of questions: 50Formats: Multiple choiceDuration: 120 minutesDelivery: Online proctored (requires camera access)Passing mark: 60% (30/50)

AD0-E710 Exam SectionsSection 1: Theme management (Theme hierarchy, image configuration, translations)Section 2: Layout XML & Templates (phtml templates)Section 3: StylesSection 4: JavaScript (mage widgets, mage library, customer data module, Knockout templates)Section 5: Admin configuration and PageBuilderSection 6: Tools (CLI and Grunt)

Share Adobe Commerce Front-End Developer Expert AD0-E710 Sample Questions1. An Adobe Commerce developer needs to install a new module that loads static files. To avoid issues with static files, which mode would the developer need to be in?A. developerB. defaultC. productionAnswer: A

An Adobe Commerce developer wants to create several abstract LESS classes used across the entire theme. Which LESS file would be used to add those classes?A. web/css/source/_theme,lessB. web/css/source/_extend.lessC. web/css/source/_extends.lessAnswer: B
An Adobe Commerce developer wants to minify and merge the CSS for frontend optimization. Where would they need to configure the minification and merging of CSS?A. In Admin panel, Stores> Configuration> Advanced> System> CSS SettingsB. In Admin panel, Stores> Configuration> Advanced> CSS> CSS SettingsC. In Admin panel, Stores> Configuration> Advanced>Developer> CSS SettingsAnswer: A
An Adobe Commerce developer has been asked to customize a product page layout. What are two valid layout handles? (Choose two.)A. catalog_product_view_id_[id]B. catalog_product_view_name_[product name]C. catalog_product_view_type_[product name]D. catalog_product_viewAnswer: B,D
An Adobe Commerce developer needs to modify the width and height of all product images inside the theme Vendor/theme. What file inside the theme is responsible for these changes?A. Vendor/theme/etc/view.xmlB. Vendor/theme/etc/theme.xmlC. Vendor/theme/etc/images.xmlAnswer: C

Data Cleaning Techniques: Learn Simple & Effective Ways To Clean Data

In this article, we will learn about the different data cleaning techniques and how to effectively clean data using them. Each technique is important and you also learn something new.

Top Data Cleaning Techniques to Learn
Let’s understand, in the following paragraphs, the different data cleaning techniques.

Remove Duplicates
The likelihood of having duplicate entries increases when data is collected from many sources or scraped. People making mistakes when keying in the information or filling out forms is one possible source of these duplications.

All duplicates will inevitably distort your data and make your analysis more difficult. When trying to visualize the data, they can also be distracting, so they should be removed as soon as possible.

Remove Irrelevant Data
If you’re trying to analyze something, irrelevant info will slow you down and make things more complicated. Before starting to clean the data, it is important to determine what is important and what is not. When doing an age demographic study, for instance, it is not necessary to incorporate clients’ email addresses.

There are various other elements that you would want to remove since they add nothing to your data. They include URLs, tracking codes, HTML tags, personally identifiable data, and excessive blank space between text.

Standardize Capitalization
It is important to maintain uniformity in the text across your data. It’s possible that many incorrect classifications would be made if capitalization were inconsistent. Since capitalization might alter the meaning, it could also be problematic when translating before processing.

Text cleaning is an additional step in preparing data for processing by a computer model; this step is much simplified if all of the text is written in lowercase.

Convert Data Types
If you’re cleaning up your data, converting numbers is probably the most common task. It’s common for numbers to be incorrectly interpreted as text, although computers require numeric data to be represented as such.

If they are shown in a readable form, your analytical algorithms will be unable to apply mathematical operations because strings are not considered numbers. Dates that are saved in a textual format follow the same rules. All of them need to be converted into numbers. For instance, if you have the date January 1, 2022, written down, you should update it to 01/01/2022.

Clear Formatting
Data that is overly structured will be inaccessible to machine learning algorithms. If you are compiling information from several resources, you may encounter a wide variety of file types. Inconsistencies and errors in your data are possible results.

Any pre-existing formatting should be removed before you begin working on your documents. This is typically a straightforward operation; programs like Excel and Google Sheets include a handy standardization feature.

Fix Errors
You’ll want to eliminate all mistakes from your data with extreme caution. Simple errors can cause you to lose out on important insights hidden in your data. Performing a simple spell check can help avoid some of these instances.

Data like email addresses might be rendered useless if they contain typos or unnecessary punctuation. It may also cause you to send email newsletters to those who have not requested them. Inconsistencies in formatting are another common source of error.

A column containing just US dollar amounts, for instance, would require a conversion of all other currency types into US dollars to maintain a uniform standard currency. This also holds for any other unit of measurement, be it grams, ounces, or anything else.

Language Translation
You’ll want everything to be written in the same language so that your data is consistent. Also, most data analysis software is limited in its ability to process many languages because of the monolingual nature of the Natural Language Processing (NLP) models upon which it is based. In that case, you’ll have to do a complete translation into a single language.

Handle Missing Values
There are two possible approaches to dealing with missing values. You can either input the missing data or eliminate the observations that contain this missing value. Your decision should be guided by your analysis objectives and your intended use of the data.

The data may lose some valuable insights if you just eliminate the missing value. You probably have your reasons for wanting to retrieve this data in mind. It may be preferable to fill in the blanks by determining what should be entered into the relevant fields. If you don’t recognize it, you can always substitute “missing.” If it’s a number, just type “0″ into the blank. However, if too many values are missing to be useful, the entire section should be eliminated.

We reach the final parts of the article, having discussed 8 highly important data cleaning techniques professionals must know about. These techniques make your job easier to deal with data, removing unwanted ones. If you feel data and numbers are where you feel at ease, data science is the ideal career path for you.

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