Bottomline Off Campus Hiring Fresher For Associate Software Engineer
Location: Bangalore
Qualification: B.E / B.Tech / MCA / M.E / M.Tech / M.Sc
Work Experience: Fresher
CTC: Approx 5.5 - 9 LPA
Apply Now:- https://boards.greenhouse.io/bottomlinetechnologies/jobs/7498875002?gh_src=e1c2a8322us
Location: Bangalore
Qualification: B.E / B.Tech / MCA / M.E / M.Tech / M.Sc
Work Experience: Fresher
CTC: Approx 5.5 - 9 LPA
Apply Now:- https://boards.greenhouse.io/bottomlinetechnologies/jobs/7498875002?gh_src=e1c2a8322us
π2
Urban Company off campus Hiring Fresher For SDE 1- Growth
Location : Gurgaon
Qualification : Bachelorβs/Masterβs graduates
Work Experience : Fresher - 2 years
CTC : 12 - 13.5 LPA
Apply now :- https://careers.urbancompany.com/jobDetail?id=9af0656f-fad3-421a-802e-caf1591f8a4f
Location : Gurgaon
Qualification : Bachelorβs/Masterβs graduates
Work Experience : Fresher - 2 years
CTC : 12 - 13.5 LPA
Apply now :- https://careers.urbancompany.com/jobDetail?id=9af0656f-fad3-421a-802e-caf1591f8a4f
π2
Cognizant | Voice Call Assistant Job | Freshers and Experienced both can apply
https://forms.office.com/pages/responsepage.aspx?id=B8QI3rkZfUKf6O3yVDAMp5sSAwA1DEhDg5LC-vaHTGlUNTZWRTVUMlFHWDZKTERWNTJOVVI0UVdKMS4u
https://forms.office.com/pages/responsepage.aspx?id=B8QI3rkZfUKf6O3yVDAMp5sSAwA1DEhDg5LC-vaHTGlUNTZWRTVUMlFHWDZKTERWNTJOVVI0UVdKMS4u
π2π1
Apple is hiring for Full Stack Developer role
45 - 70 LPA
Apply Now:-
https://jobs.apple.com/en-us/details/200551354/full-stack-engineer?team=SFTWR
45 - 70 LPA
Apply Now:-
https://jobs.apple.com/en-us/details/200551354/full-stack-engineer?team=SFTWR
Intel Freshers Recruitment | Graduate Intern Bangalore
Qualification:- BTech, MTech
Apply Now:-
https://jobs.intel.com/en/job/-/-/599/66537757808
Qualification:- BTech, MTech
Apply Now:-
https://jobs.intel.com/en/job/-/-/599/66537757808
π3
Razorpay is hiring for SDE l role
1+ year experience required
CTC : 15 - 20 LPA
https://boards.greenhouse.io/razorpaysoftwareprivatelimited/jobs/4438927005
1+ year experience required
CTC : 15 - 20 LPA
https://boards.greenhouse.io/razorpaysoftwareprivatelimited/jobs/4438927005
π2
Revature | Software Engineer | 4 - 6 LPA | 2023/2024 passouts
Apply Now:-
https://revature.com/apply/
Apply Now:-
https://revature.com/apply/
Infosys
Job ID/Reference Code
INFSYS-EXTERNAL-184946
Work Experience
2-5 Years
Job Title
SQL Database
https://career.infosys.com/jobdesc?sourceId=4003&jobReferenceCode=INFSYS-EXTERNAL-184946
Job ID/Reference Code
INFSYS-EXTERNAL-184946
Work Experience
2-5 Years
Job Title
SQL Database
https://career.infosys.com/jobdesc?sourceId=4003&jobReferenceCode=INFSYS-EXTERNAL-184946
π2
Amazon Software System Development Engineer Jobs - Apply Now for On-Demand Interviews!"
Position: System Development Engineer
Job type: FULL TIME
Salary: 15 LPA
Apply Now:-
https://www.amazon.jobs/en/jobs/2598111/system-development-engineer-i
Position: System Development Engineer
Job type: FULL TIME
Salary: 15 LPA
Apply Now:-
https://www.amazon.jobs/en/jobs/2598111/system-development-engineer-i
π1
SAP Off Campus Hiring Fresher For IT Technology Services Associate
Location: Bangalore
Qualification: Bachelor's Degree
Work Experience: Fresher
Salary: 7 - 8 LPA
Apply Now:-
https://jobs.sap.com/job/Bangalore-IT-Technology-Services-Associate-560066/1090655601/?feedId=244601&utm_campaign=limitedlistings&utm_source=LinkedinJobPostings
Location: Bangalore
Qualification: Bachelor's Degree
Work Experience: Fresher
Salary: 7 - 8 LPA
Apply Now:-
https://jobs.sap.com/job/Bangalore-IT-Technology-Services-Associate-560066/1090655601/?feedId=244601&utm_campaign=limitedlistings&utm_source=LinkedinJobPostings
Accenture HackDiva Test Pattern - 2 Codes
Round 1-2 Codes (90 min)
Round 2-2 Codes (120 min)
Round 3-2 Codes (120 min)
Note: Each Round is Elimination
Round 1 (DATE: 07 JULY 2024)
Round 2 (DATE: 14 JULY 2024)
Round 3 (DATE: 21 JULY 2024)
Round 1-2 Codes (90 min)
Round 2-2 Codes (120 min)
Round 3-2 Codes (120 min)
Note: Each Round is Elimination
Round 1 (DATE: 07 JULY 2024)
Round 2 (DATE: 14 JULY 2024)
Round 3 (DATE: 21 JULY 2024)
π4
πIT learning courses
πAll programing courses
πAbdul bari courses
πAshok IT
πLinux
πNetworking
πDesign patterns
πDonet
πDocker
πEntity framework
πNode.js
πASP. Net
πAps. Net cro
πjava
πJavaScript
πfull stack developer
Tutorials + Books + Courses + Trainings + Workshops + Educational Resources
πΉData science
πΉPython
πΉArtificial Intelligence
πΉAWS Certified
πΉCloud
πΉBIG DATA
πΉData Analytics
πΉBI
πΉGoogle Cloud Platform
πΉIT Training
πΉMBA
πΉMachine Learning
πΉDeep Learning
πΉEthical Hacking
πΉSPSS
πΉStatistics
πΉData Base
πΉLearning language resources English , π«π·
πππππ ππππππππ πππ ππππππ
β‘οΈ Basics
β‘οΈ Reconnaissance and Footprinting
β‘οΈ Network Scanning
β‘οΈ Enumeration
β‘οΈ Firewalls HIDs Honeypot
β‘οΈ Malware and Threats
β‘οΈ Mobile Platform
β‘οΈ Pentesting
β‘οΈ Sql Injection
β‘οΈ System Hacking
β‘οΈ Web Application
β‘οΈ Wireless Network
β‘οΈ Cloud Computing
β‘οΈ Web Server
β‘οΈ Social Engineering
β‘οΈ Session Hijacking
β‘οΈ Sniffing
β‘οΈ BufferOverflow
β‘οΈ Cryptography
β‘οΈ Denial Of Service
All courses (100 rupees)
Contact:- @meterials_available
πAll programing courses
πAbdul bari courses
πAshok IT
πLinux
πNetworking
πDesign patterns
πDonet
πDocker
πEntity framework
πNode.js
πASP. Net
πAps. Net cro
πjava
πJavaScript
πfull stack developer
Tutorials + Books + Courses + Trainings + Workshops + Educational Resources
πΉData science
πΉPython
πΉArtificial Intelligence
πΉAWS Certified
πΉCloud
πΉBIG DATA
πΉData Analytics
πΉBI
πΉGoogle Cloud Platform
πΉIT Training
πΉMBA
πΉMachine Learning
πΉDeep Learning
πΉEthical Hacking
πΉSPSS
πΉStatistics
πΉData Base
πΉLearning language resources English , π«π·
πππππ ππππππππ πππ ππππππ
β‘οΈ Basics
β‘οΈ Reconnaissance and Footprinting
β‘οΈ Network Scanning
β‘οΈ Enumeration
β‘οΈ Firewalls HIDs Honeypot
β‘οΈ Malware and Threats
β‘οΈ Mobile Platform
β‘οΈ Pentesting
β‘οΈ Sql Injection
β‘οΈ System Hacking
β‘οΈ Web Application
β‘οΈ Wireless Network
β‘οΈ Cloud Computing
β‘οΈ Web Server
β‘οΈ Social Engineering
β‘οΈ Session Hijacking
β‘οΈ Sniffing
β‘οΈ BufferOverflow
β‘οΈ Cryptography
β‘οΈ Denial Of Service
All courses (100 rupees)
Contact:- @meterials_available
π1
def split_string_cost(S):
# Length of the string S
len_S = len(S)
# To store the cost of the split parts
max_cost = 0
# Set to keep track of distinct characters in the first part
distinct_chars_A = set()
# List to keep track of the cost for the second part from each split position
cost_B = [0] * len_S
# Set to keep track of distinct characters in the second part
distinct_chars_B = set()
# Calculate cost for second part from the end
for i in range(len_S - 1, -1, -1):
distinct_chars_B.add(S[i])
cost_B[i] = len(distinct_chars_B)
# Calculate maximum sum of cost for parts A and B
for i in range(len_S - 1):
distinct_chars_A.add(S[i])
cost_A = len(distinct_chars_A)
cost = cost_A + cost_B[i + 1]
max_cost = max(max_cost, cost)
# Calculate the result as |S| - X
result = len_S - max_cost
return result
# Example usage
S = "aaabbb"
print(split_string_cost(S)) # Output: 3
# Length of the string S
len_S = len(S)
# To store the cost of the split parts
max_cost = 0
# Set to keep track of distinct characters in the first part
distinct_chars_A = set()
# List to keep track of the cost for the second part from each split position
cost_B = [0] * len_S
# Set to keep track of distinct characters in the second part
distinct_chars_B = set()
# Calculate cost for second part from the end
for i in range(len_S - 1, -1, -1):
distinct_chars_B.add(S[i])
cost_B[i] = len(distinct_chars_B)
# Calculate maximum sum of cost for parts A and B
for i in range(len_S - 1):
distinct_chars_A.add(S[i])
cost_A = len(distinct_chars_A)
cost = cost_A + cost_B[i + 1]
max_cost = max(max_cost, cost)
# Calculate the result as |S| - X
result = len_S - max_cost
return result
# Example usage
S = "aaabbb"
print(split_string_cost(S)) # Output: 3
π1
def minimum_unique_sum(A):
N = len(A)
A.sort()
total = A[0]
for i in range(1, N):
if A[i] <= A[i-1]:
A[i] = A[i-1] + 1
total += A[i]
return total
# Input format
N = int(input())
A = []
for i in range(N):
A.append(int(input()))
# Output
result = minimum_unique_sum(A)
print(result)
N = len(A)
A.sort()
total = A[0]
for i in range(1, N):
if A[i] <= A[i-1]:
A[i] = A[i-1] + 1
total += A[i]
return total
# Input format
N = int(input())
A = []
for i in range(N):
A.append(int(input()))
# Output
result = minimum_unique_sum(A)
print(result)
π1
def count_distinct_strings(S):
distinct_strings = set()
for i in range(len(S) - 1):
new_string = S[:i] + S[i+2:]
distinct_strings.add(new_string)
return len(distinct_strings)
# Read input string
S = input().strip()
# Get the number of distinct strings that can be generated
result = count_distinct_strings(S)
print(result)
distinct_strings = set()
for i in range(len(S) - 1):
new_string = S[:i] + S[i+2:]
distinct_strings.add(new_string)
return len(distinct_strings)
# Read input string
S = input().strip()
# Get the number of distinct strings that can be generated
result = count_distinct_strings(S)
print(result)
π1
def solve(N, A):
unique_sums = set()
for start in range(N):
current_sum = 0
for end in range(start, N):
current_sum += A[end]
unique_sums.add(current_sum)
print(len(unique_sums))
unique_sums = set()
for start in range(N):
current_sum = 0
for end in range(start, N):
current_sum += A[end]
unique_sums.add(current_sum)
print(len(unique_sums))
import sys
det solve(N, A)
for i in range(N):
if A[i]=0;
A[1]
ps=0
M-1
pm={0:-1)
for i in range(N):
ps+=A[i]
if ps in pm:
m=max(m,i-pm[ps])
else:
pm[ps]=i
return m
def main():
Nint(sys.stdin.readline().strip())
A-[]
for_ in range(N):
A.append(int(sys.stdin.readline().strip()))
result = solve(N, A)
print(result)
Largest Subarray with equal number
Infosys
det solve(N, A)
for i in range(N):
if A[i]=0;
A[1]
ps=0
M-1
pm={0:-1)
for i in range(N):
ps+=A[i]
if ps in pm:
m=max(m,i-pm[ps])
else:
pm[ps]=i
return m
def main():
Nint(sys.stdin.readline().strip())
A-[]
for_ in range(N):
A.append(int(sys.stdin.readline().strip()))
result = solve(N, A)
print(result)
Largest Subarray with equal number
Infosys
π3
def max_sum_of_distinct_characters(S):
n = len(S)
left_chars = set()
right_chars = set()
left_count = [0] * n
right_count = [0] * n
for i in range(n):
left_chars.add(S[i])
left_count[i] = len(left_chars)
for i in range(n-1, -1, -1):
right_chars.add(S[i])
right_count[i] = len(right_char)
max_sum = 0
for i in range(n-1):
max_sum = max(max_sum, left_count[i] + right_count[i+1])
return n- max_sum
Split String code
Python 3
All passed
n = len(S)
left_chars = set()
right_chars = set()
left_count = [0] * n
right_count = [0] * n
for i in range(n):
left_chars.add(S[i])
left_count[i] = len(left_chars)
for i in range(n-1, -1, -1):
right_chars.add(S[i])
right_count[i] = len(right_char)
max_sum = 0
for i in range(n-1):
max_sum = max(max_sum, left_count[i] + right_count[i+1])
return n- max_sum
Split String code
Python 3
All passed
π3