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FaceCode: The DEFINITIVE Way To Conduct Coding Interviews

FaceCode: The DEFINITIVE Way To Conduct Coding Interviews

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Kumari Trishya
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February 3, 2021
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3 min read
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It has been well established that you cannot hire a developer unless you see them work on a problem real-time.

For the last eight years, we have observed and figured out flaws in the way the tech world approaches the uber-important ‘interview round’. Let us list them for you:

1. Non-standardized, subjective evaluations due to lack of preparation time: From our conversations with multiple hiring managers and recruiters, we realized that ‘prep time’ is a misnomer. Most interviewers we talked to said they could only manage to start prepping for an interview 15 minutes before it started. A lot of the time, candidate resumes are checked minutes before the actual interview happens. With very little ‘preparation’, interview questions are chosen from a pool of common, generic questions or are made up on the spot. This makes the interview non-standardized as the evaluation parameters are not customized to the role at hand.

2. Time away from ‘core’ function: Finding the right questions to ask your candidate and setting up evaluation parameters is time taking. Add to that the time spent in writing manual feedback, and one can see that hiring managers spend a lot of their working hours taking interviews, and away from their core job function. Here’s a quick calculation of how much time your company loses with inefficient interviews:

Coding-interview-time-loss-HackerEarth

3. The pain of writing detailed interview summaries: Many hiring managers we talked to said they inadvertently end up delaying their interview feedback at the very last minute due to time crunch. Summarizing an hour-long conversation into succinct points requires a razor-sharp memory and ample patience. When you’re rushing through this part of the process, staying objective is hard and hiring managers tend to use ‘gut feel’ in their feedback. Post-interview feedback in most cases is almost always broken, and the age-old problem of miscommunication between recruiters and hiring managers continues to persist due to the lack of an efficient process.

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We believe all coding interviews should be OBJECTIVE and SKILL-BASED. So, we decided to end these problems for good

With the enhanced version our coding interview platform – FaceCode – we have added to our suite of kickass developer-hiring tools to ensure that the developer-hiring life cycle remains objective and skill-based.

What’s FaceCode you ask? Only the most advanced coding interview tool ever with a host of features that weed out subjectivity and bias from every situation – whether you’re conducting interviews in person or remotely. FaceCode is like noise cancellation for your coding interviews. It cuts out all the unnecessary noise and allows hiring managers to focus on what matters most: SKILLS.

Here’s how FaceCode helps you solve the problems we listed above (and more):

a. Collaborative, real-time code editor with built-in compiler, and question library

Benefit: Assess design problems without navigating away from your interview interface.

System design problems are a necessity in most senior developer interviews. Our collaborative, real-time diagram board helps you evaluate this skill seamlessly for back-end, cloud engineer and other roles.

Coding interview - faceCode - Diagram Board - HackerEarth

e. Diversity Hiring Mode - Hides PII

Benefit: Bye bye bias!

FaceCode interviews come with an anti-bias feature. As a hiring manager, if you would like to keep your interviews bias-free you can do so by switching this feature ‘ON’ when you schedule an interview. This hides the candidate’s PII (Personally Identifiable Information) and masks their name with an alias.

[caption id="attachment_28587" align="aligncenter" width="900"]Coding Interview - FaceCode - PII Feature - HackerEarth Hide personal details with aliases[/caption]

And there you have it!

HackerEarth has a policy: Don’t Be An Asshole (it’s part of our cultural tenets). Which also means, we aren’t judgmental people. Unless it’s about how you conduct your technical coding interviews :P

A version of FaceCode with fewer features was made available to HackerEarth clients as an add-on to HackerEarth Assessments late in 2019. The platform saw a 4000% increase in the number of interviews conducted between Q3 2019 and Q3 2020. No doubt some of it was driven by the pandemic, but it is also testament to the fact that hiring managers are waking up to the benefits of having an automated coding interview tool that can help them save time and conduct flawless interviews both remotely, as well as in person.

Yes, many users have come back to us to say that they would continue to use FaceCode even in face-to-face interviews because of its time-saving features, and because how it makes interviews supremely objective. This is why we believe that FaceCode is THE definitive way to conduct coding interviews virtually or on-site!

We’ve heard a lot of good things about FaceCode from our users and we’re glad to be launching it publicly! If you are interested in getting a free trial, do write in to our product whizkid Akash Bhat (akash@hackerearth.com).

Join us as we say goodbye to subjective, inefficient, and outdated interview processes, yes? We’ll wait for you.

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Author
Kumari Trishya
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February 3, 2021
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3 min read
Share

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Now, assess mobile developers in their true native environment. Our enhanced Full Stack questions now offer full support for both Java and Kotlin, the core languages powering the Android ecosystem. This allows you to evaluate candidates on authentic, real-world app development skills, moving beyond theoretical knowledge to practical application.

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Say goodbye to setup drama and tool-switching. Candidates can now build, test, and debug Android and React Native applications directly within the browser-based IDE. This seamless, in-browser experience provides a true-to-life evaluation, saving valuable time for both candidates and your hiring team.

Assess the Skills That Truly Matter

With native Android support, your assessments can now delve into a candidate's ability to write clean, efficient, and functional code in the languages professional developers use daily. Kotlin's rapid adoption makes proficiency in it a key indicator of a forward-thinking candidate ready for modern mobile development.

Breakup of Mobile development skills ~95% of mobile app dev happens through Java and Kotlin
This chart illustrates the importance of assessing proficiency in both modern (Kotlin) and established (Java) codebases.

Streamlining Your Assessment Workflow

The integrated mobile emulator fundamentally transforms the assessment process. By eliminating the friction of fragmented toolchains and complex local setups, we enable a faster, more effective evaluation and a superior candidate experience.

Old Fragmented Way vs. The New, Integrated Way
Visualize the stark difference: Our streamlined workflow removes technical hurdles, allowing candidates to focus purely on demonstrating their coding and problem-solving abilities.

Quantifiable Impact on Hiring Success

A seamless and authentic assessment environment isn't just a convenience, it's a powerful catalyst for efficiency and better hiring outcomes. By removing technical barriers, candidates can focus entirely on demonstrating their skills, leading to faster submissions and higher-quality signals for your recruiters and hiring managers.

A Better Experience for Everyone

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For Recruiters & Hiring Managers:

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Vibe Coding: Shaping the Future of Software

A New Era of Code

Vibe coding is a new method of using natural language prompts and AI tools to generate code. I have seen firsthand that this change makes software more accessible to everyone. In the past, being able to produce functional code was a strong advantage for developers. Today, when code is produced quickly through AI, the true value lies in designing, refining, and optimizing systems. Our role now goes beyond writing code; we must also ensure that our systems remain efficient and reliable.

From Machine Language to Natural Language

I recall the early days when every line of code was written manually. We progressed from machine language to high-level programming, and now we are beginning to interact with our tools using natural language. This development does not only increase speed but also changes how we approach problem solving. Product managers can now create working demos in hours instead of weeks, and founders have a clearer way of pitching their ideas with functional prototypes. It is important for us to rethink our role as developers and focus on architecture and system design rather than simply on typing c

The Promise and the Pitfalls

I have experienced both sides of vibe coding. In cases where the goal was to build a quick prototype or a simple internal tool, AI-generated code provided impressive results. Teams have been able to test new ideas and validate concepts much faster. However, when it comes to more complex systems that require careful planning and attention to detail, the output from AI can be problematic. I have seen situations where AI produces large volumes of code that become difficult to manage without significant human intervention.

AI-powered coding tools like GitHub Copilot and AWS’s Q Developer have demonstrated significant productivity gains. For instance, at the National Australia Bank, it’s reported that half of the production code is generated by Q Developer, allowing developers to focus on higher-level problem-solving . Similarly, platforms like Lovable or Hostinger Horizons enable non-coders to build viable tech businesses using natural language prompts, contributing to a shift where AI-generated code reduces the need for large engineering teams. However, there are challenges. AI-generated code can sometimes be verbose or lack the architectural discipline required for complex systems. While AI can rapidly produce prototypes or simple utilities, building large-scale systems still necessitates experienced engineers to refine and optimize the code.​

The Economic Impact

The democratization of code generation is altering the economic landscape of software development. As AI tools become more prevalent, the value of average coding skills may diminish, potentially affecting salaries for entry-level positions. Conversely, developers who excel in system design, architecture, and optimization are likely to see increased demand and compensation.​
Seizing the Opportunity

Vibe coding is most beneficial in areas such as rapid prototyping and building simple applications or internal tools. It frees up valuable time that we can then invest in higher-level tasks such as system architecture, security, and user experience. When used in the right context, AI becomes a helpful partner that accelerates the development process without replacing the need for skilled engineers.

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Ready to streamline your recruitment process? Get a free demo to explore cutting-edge solutions and resources for your hiring needs.

Guide to Conducting Successful System Design Interviews in 2025

What is Systems Design?

Systems Design is an all encompassing term which encapsulates both frontend and backend components harmonized to define the overall architecture of a product.

Designing robust and scalable systems requires a deep understanding of application, architecture and their underlying components like networks, data, interfaces and modules.

Systems Design, in its essence, is a blueprint of how software and applications should work to meet specific goals. The multi-dimensional nature of this discipline makes it open-ended – as there is no single one-size-fits-all solution to a system design problem.

What is a System Design Interview?

Conducting a System Design interview requires recruiters to take an unconventional approach and look beyond right or wrong answers. Recruiters should aim for evaluating a candidate’s ‘systemic thinking’ skills across three key aspects:

How they navigate technical complexity and navigate uncertainty
How they meet expectations of scale, security and speed
How they focus on the bigger picture without losing sight of details

This assessment of the end-to-end thought process and a holistic approach to problem-solving is what the interview should focus on.

What are some common topics for a System Design Interview

System design interview questions are free-form and exploratory in nature where there is no right or best answer to a specific problem statement. Here are some common questions:

How would you approach the design of a social media app or video app?

What are some ways to design a search engine or a ticketing system?

How would you design an API for a payment gateway?

What are some trade-offs and constraints you will consider while designing systems?

What is your rationale for taking a particular approach to problem solving?

Usually, interviewers base the questions depending on the organization, its goals, key competitors and a candidate’s experience level.

For senior roles, the questions tend to focus on assessing the computational thinking, decision making and reasoning ability of a candidate. For entry level job interviews, the questions are designed to test the hard skills required for building a system architecture.

The Difference between a System Design Interview and a Coding Interview

If a coding interview is like a map that takes you from point A to Z – a systems design interview is like a compass which gives you a sense of the right direction.

Here are three key difference between the two:

Coding challenges follow a linear interviewing experience i.e. candidates are given a problem and interaction with recruiters is limited. System design interviews are more lateral and conversational, requiring active participation from interviewers.

Coding interviews or challenges focus on evaluating the technical acumen of a candidate whereas systems design interviews are oriented to assess problem solving and interpersonal skills.

Coding interviews are based on a right/wrong approach with ideal answers to problem statements while a systems design interview focuses on assessing the thought process and the ability to reason from first principles.

How to Conduct an Effective System Design Interview

One common mistake recruiters make is that they approach a system design interview with the expectations and preparation of a typical coding interview.
Here is a four step framework technical recruiters can follow to ensure a seamless and productive interview experience:

Step 1: Understand the subject at hand

  • Develop an understanding of basics of system design and architecture
  • Familiarize yourself with commonly asked systems design interview questions
  • Read about system design case studies for popular applications
  • Structure the questions and problems by increasing magnitude of difficulty

Step 2: Prepare for the interview

  • Plan the extent of the topics and scope of discussion in advance
  • Clearly define the evaluation criteria and communicate expectations
  • Quantify constraints, inputs, boundaries and assumptions
  • Establish the broader context and a detailed scope of the exercise

Step 3: Stay actively involved

  • Ask follow-up questions to challenge a solution
  • Probe candidates to gauge real-time logical reasoning skills
  • Make it a conversation and take notes of important pointers and outcomes
  • Guide candidates with hints and suggestions to steer them in the right direction

Step 4: Be a collaborator

  • Encourage candidates to explore and consider alternative solutions
  • Work with the candidate to drill the problem into smaller tasks
  • Provide context and supporting details to help candidates stay on track
  • Ask follow-up questions to learn about the candidate’s experience

Technical recruiters and hiring managers should aim for providing an environment of positive reinforcement, actionable feedback and encouragement to candidates.

Evaluation Rubric for Candidates

Facilitate Successful System Design Interview Experiences with FaceCode

FaceCode, HackerEarth’s intuitive and secure platform, empowers recruiters to conduct system design interviews in a live coding environment with HD video chat.

FaceCode comes with an interactive diagram board which makes it easier for interviewers to assess the design thinking skills and conduct communication assessments using a built-in library of diagram based questions.

With FaceCode, you can combine your feedback points with AI-powered insights to generate accurate, data-driven assessment reports in a breeze. Plus, you can access interview recordings and transcripts anytime to recall and trace back the interview experience.

Learn how FaceCode can help you conduct system design interviews and boost your hiring efficiency.

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