AI-Driven Expert Questionnaire System Text element

Precision Skill Evaluation Across Every Job Role

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About

Industry

Professional Training, Corporate Hiring, Workforce Development

Application Type

AI-Powered Questionnaire Generation Platform

Core Functionality:

AI-based question creation, competency mapping, validation pipeline, secure assessment management

The client specializes in corporate hiring, professional training, and workforce development. Their assessment process depended on generic question banks and manual questionnaire creation, which slowed down hiring cycles and often resulted in inaccurate evaluations. They needed a system that could generate expert-level technical and behavioral questions tailored to job roles, difficulty levels, and competency frameworks.

The platform had to support MCQs, coding tasks, case scenarios, and role-based assessments while producing answer keys and rubrics automatically. The backend required an AI-driven generation engine, validation layers, quality scoring models, and secure storage to prevent leaks or exposure.

Results

The AI-driven generator transformed questionnaire creation and standardized assessment quality.

Speed

3× faster question creation across departments

Effort

70 percent reduction in manual work for HR and trainers

Quality

95 percent consistency validated by SMEs

Scale

20,000 plus unique questions across 40 plus job roles

quote

This system finally gave us expert-level questions without the weeks of manual work.

Challenges

Why it Mattered?

Accurate questionnaires define how effectively organizations measure skill. Automating expert-level question creation removed manual bottlenecks and ensured consistent, high-quality assessments across all roles.

Our Approach-

We built a domain-aware AI question generator backed by competency mapping, validation layers and secure delivery workflows.

LLM-based question creation trained on domain-specific datasets
Linking every question to skills, job roles and frameworks like Bloom’s taxonomy and KPIs
Automated difficulty scoring, plagiarism checks and quality scoring
Simple tools for HR and educators to edit, approve and deploy
Formats compatible with ATS, LMS and exam systems
Encrypted pipelines and RBAC for leak-proof management

Our Tools:

LLM Models:

GPT-4
LLaMA
Mistral
Custom Fine-Tuned Models

ML Pipelines:

Difficulty Prediction
Quality Scoring

Backend:

Python
FastAPI
Microservices

Frontend:

React
Next.js

Databases:

PostgreSQL
MongoDB
Redis

Security:

AES Encryption
RBAC
Audit Logs

DevOps:

Docker
AWS ECS
S3
CloudWatch

Before & After

Feature/Metric Before (Manual Creation) After (AI-Driven Creation)
Creation time for questionnaire 5–10 days 1–2 hours
Question quality consistency Extremely variable 95 percent consistent
SME time investment 20–25 hours/week 5–6 hours/week
Scalability Limited by human effort 20,000+ questions generated
Hiring cycle time 20–30 days40 percent faster

Testimonial

A Game-Changer for How We Guide Learners and Jobseekers

Before this platform, our recommendations were mostly generic and often missed what learners actually needed. We spent hours trying to manually guide students and professionals, and even then the results were inconsistent. The new AI-driven recommendation engine changed everything. It reads user behavior, understands skill levels, and suggests courses and job roles that genuinely fit their goals. Our completion rates went up, placements became faster, and our counselling workload dropped dramatically. It feels like having a full team of expert advisors working behind the scenes, but with far more precision and consistency.

Director of Career Service

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