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I've got 93.9 percentile in jee mains january , can i get Nit Jamshedpur under home state quota for obcncl girl student from Jharkhand ? If yes whuch branches can i get ?


yadavanshishalu 20th Dec, 2019
Answers (2)
priyaankasarkar Student Expert 29th Jan, 2020

Your rank can be predicted by using the formula, (100-your total percentile)*869010/100. In your case, your approximate rank would be  53009. Let's say the number of candidates for April exam increased to 12,00,000 then your final rank shall be (100 - your total score) X 12,00,000/100.

In 2019, the cut offs for NIT Jamshedpur, for female OBC Home State Candidate have been as follows:

Civil Engineering: 16612

CSE: 8148

Electrical: 12083

ECE: 11607

ME: 14011

Metallurgical: 16769

Production: 15011

Now these are 2019 cut offs and cut offs change every year depending on various factors such as Total no. of seats available, difficulty of the exam, previous years trends, no. of Candidates appearing for the exam and no. of Candidates applying for a course. So anything less than 95 percentile would be difficult for a seat in Home State NIT. But if you want to check the closing ranks of other NITs, please visit our page: https://engineering.careers360.com/articles/jee-main-cutoff

Now to predict colleges, please use our college predictor:

Atulya Himanshu 29th Jan, 2020


Hi Shalu,

Its difficult to predict actual rank or JEE advanced qualify marks. you may calculate your expected rank by this formula

To Calculate the rank for B. Tech:
So rank formula is (100 - your total score) X 869010 /100

But Your predicted JEE Main AIR rank for 2020 is
61474-64710.


At this Score or Rank your Chances To get NIT Jamshedpur are very less.

I hope you will increase your nta score in April and take admissions in nit or iit

Hope this helps! All The Best!!

Feel free to ask if you have any more queries
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