Rudrakumar Mandaliya

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Rudrakumar Mandaliya

Mechanical Engineering · Government Engineering College, Bhavnagar

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Projects

Certified

Self-directed project

Energy and Renewable: Machine Learning for the Power Grid

Junior Machine Learning Engineer · AI / ML · August 2026

92/ 100

A ProoV case study · educational project, not employment

Built an end-to-end turbine yield predictor using leakage-free sensor inputs and a genuine time-based holdout. Compared a LinearRegression baseline with a RandomForest model, showed the forest improved held-out MAE from 2.90 to 1.53 MWh, and documented the model’s intended use, limits, and monitoring plan in a concise model card.

Graded against

  • Build and validate the model correctly35%
  • Optimize and evaluate honestly25%
  • Write the Model Card (clarity + honesty)25%
  • Explain it to a non-expert15%

Passed · pass mark 60/100

What stood out6
  • Correctly dropped CO and NOx because they are measured downstream of the prediction moment
  • Used an earlier-year training window and later-year holdout instead of a random shuffle
  • Showed a clear improvement from LinearRegression (MAE 2.90) to RandomForest (MAE 1.53) on held-out data
  • Wrote a model card that explicitly states the plant-specific limits, drift risk, and retraining trigger
  • Leakage-Free Feature Selection
  • Honest Time-Based Validation
The work I submitted19 tasks

11 tasks · 12 lines · Python, JavaScript · 8 written answers · 355 words

  • Problem Frame168 characters
  • Leakage Flags113 characters
  • Train Validate BaselinePython · 1.4k characters
  • Train Validate Forest941 characters
  • Train Validate124 characters
  • Tune Evaluate SetupPython · 1.2k characters
  • Residual Read263 characters
  • Drift Monitor91 characters
  • Model Card1.4k characters
  • Teach BackJavaScript · 823 characters
  • Jupyterlite Code2 lines
  • Problem Frame11 words
  • Leakage Flags1 word
  • Train Validate Baseline141 words
  • Train Validate Forest76 words
  • Train Validate1 word
  • Tune Evaluate Setup89 words
  • Residual Read35 words
  • Drift Monitor1 word

Summarised on purpose — the submitted code and writing stay private so this page cannot be reused as an answer key. The full submission sits behind the verified certificate.

Verified certificateTamper-proof · issued by ProoV
Certified

Self-directed project

Supply Chain Optimization with SAP Business AI

Business AI Associate · AI / ML · August 2026

96/ 100

A ProoV case study · educational project, not employment

Built a credible supply-chain rescue plan end to end: identified the real single-source bottleneck, quantified the idle-line cost, and designed a Joule-style copilot that reads live supplier and inventory signals to surface the best next action. The plan includes explicit human approval guardrails, a defensible euros-saved estimate, an India transfer check, and a concise board pitch with a bounded pilot ask.

Graded against

  • Problem framing & business sense30%
  • Business-AI solution design & guardrails30%
  • ROI and decision quality25%
  • Executive communication15%

Passed · pass mark 60/100

What stood out6
  • Correctly chose the true bottleneck and ignored the self-resolving port delay
  • Defined a concrete next action for the copilot and paired it with a strong never-do line
  • Applied the low-value, reversible, high-confidence rule correctly across the action sort
  • Built a board-ready pitch with a bounded 2-person, 60-day pilot and a measurable success target
  • Leakage-Free Prioritization
  • Honest ROI Framing
The work I submitted20 tasks

12 tasks · 13 lines · 8 written answers · 607 words

  • SAP Brand Sentiment Pre181 characters
  • Trust Pledge135 characters
  • Diagnose Break300 characters
  • Problem Statement1.1k characters
  • Copilot Spec945 characters
  • Guardrails Sort1.3k characters
  • ROI Payback592 characters
  • India Transfer611 characters
  • Board Pitch1.7k characters
  • Teach Back781 characters
  • SAP Brand Sentiment Post188 characters
  • Jupyterlite Code2 lines
  • SAP Brand Sentiment Pre14 words
  • Trust Pledge20 words
  • Diagnose Break23 words
  • Problem Statement152 words
  • Copilot Spec135 words
  • Guardrails Sort127 words
  • ROI Payback59 words
  • India Transfer77 words

Summarised on purpose — the submitted code and writing stay private so this page cannot be reused as an answer key. The full submission sits behind the verified certificate.

Verified certificateTamper-proof · issued by ProoV
Certified

Self-directed project

Machine Learning for Automotive

AI / ML · July 2026

84/ 100

A ProoV case study · educational project, not employment

Built an end-to-end used-car pricing analysis for VW and Audi UK listings. Combined both brands into one dataset, explored price and mileage patterns, engineered predictive features, trained and compared Linear Regression and Random Forest models, and translated the results into a clear Certified Pre-Owned pricing recommendation.

Graded against

  • Exploratory Data Analysis20%
  • Feature Engineering25%
  • Model Building & Evaluation35%
  • Business Communication20%

Passed · pass mark 60/100

What stood out6
  • Combined VW and Audi listings into a single analysis frame with a brand indicator
  • Used multiple EDA views: distributions, correlation analysis, scatter plots, and brand boxplots
  • Compared a naive mileage-only baseline against more complete modeling work
  • Connected model output to a concrete CPO workflow recommendation
  • Exploratory Data Analysis
  • Leakage-Aware Feature Preparation
The work I submitted10 tasks

5 tasks · 6 lines · 5 written answers · 177 words

  • VW Sprint1 Complete56 characters
  • VW Sprint2 Complete61 characters
  • VW Sprint3 Complete59 characters
  • VW Business Insights1.5k characters
  • Jupyterlite Code2 lines
  • VW Sprint1 Complete1 word
  • VW Sprint2 Complete1 word
  • VW Sprint3 Complete1 word
  • VW Business Insights173 words
  • Jupyterlite Code1 word

Summarised on purpose — the submitted code and writing stay private so this page cannot be reused as an answer key. The full submission sits behind the verified certificate.

Verified certificateTamper-proof · issued by ProoV
3Projects completed
3Verified certificates
91Average score
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