Jelly, 1 byte

ḍ

This took me hours to golf.

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Brain-Flak, 72 70 64 62 58 46 bytes

{({}[()]{(<()>)}{}<({}[()]<({}())>)>)}{}{{}}{}

Takes dividend and divisor (in that order) as input and prints the divisor (truthy) or nothing. Since each stack has an implicit, infinite amount of zeroes, empty output should be considered falsy.

While not stack-clean, this solution uses only a single stack.

Try it online!

Thanks to @WheatWizard for golfing off 2 bytes!

How it works

                INPUT: a (dividend), b (divisor)
                INITIAL STACK: n = a, d = b, r = 0
                               An infinite amount of zeroes follows.

{               While n is non-zero:
  (
    {}              Pop n from the stack.
    [()]            Yield -1.
    {               While the top of the stack (initially, d) is non-zero:
      (<()>)          Push 0.
    }
    {}              Pop 0. This will remove d from the stack if d = 0, leaving r
                    on top. We can think of this as performing the assignment
                    (d, r) = (r, d) if d = 0.
    <
      (
        {}              Pop d.
        [()]            Yield -1.
        <
          (
            {}              Pop r.
            ()              Yield 1.
          )               Push r + 1.
        >               Yield 0.
      )               Push d + (-1) + 0 = d - 1.
    >               Yield 0.
  )               Push n + (-1) + 0 + 0 + 0 = n - 1.
}               Each iteration decrements n, swaps d and r if d = 0, decrements d,
                and increments r.
                FINAL VALUES: n = 0
                              d = b - r
                              r = a % b if a % b > 0 else b
{}              Pop n.
{               While the top of the stack is non-zero:
  {}              Pop it.
}               This pops d and r if d > 0 (and, thus, a % b > 0) or noting at all.
{}              Pop d or a 0, leaving r if r = b and, thus, a % b = 0.

Modulus calculation, 42 bytes

The above full program can be modified in a trivial manner to calculate the modulus instead.

{({}[()]<({}[()]<({}())>)>{(<()>)}{})}{}{}

As before, this method is not stack-clean, but it uses only a single stack. A modulus of 0 will leave the stack empty, which is roughly equivalent to leaving 0; each stack contains infinite zeroes.

Try it online!

How it works

Compare the two loops of the divisibility tester and the modulus calculator.

{({}[()]{(<()>)}{}<({}[()]<({}())>)>)}
{({}[()]<({}[()]<({}())>)>{(<()>)}{})}

The only difference is the location of {(<()>)}{}, which swaps d and r if d = 0. To calculate the modulus, we perform this swap after decrementing d and incrementing r.

This change does not affect the outcome if a %b > 0, but if a % b = 0, it leaves (n, d, r) = (0, b, 0) – rather than (n, d, r) = (0, 0, b) – on the stack.

Thus, to obtain the modulus, we only have to pop n and d with {}{}.

Stack-clean modulus calculation, 64 bytes

The 42-byte modulus algorithm is not stack-clean, so it cannot be used as is in all programs. The following version pops dividend and divisor (in that order) from the active stack and pushes the modulus in return. It has no other side effects.

({}(<()>)){({}[()]<(({}()[({})])){{}(<({}({}))>)}{}>)}({}{}<{}>)

This solution is largely based on @WheatWizard's previous 72-byte record, but it saves 6 bytes by never switching stacks.

Try it online!

How it works

             INPUT: a (dividend), b (divisor)
             INITIAL STACK: n = a, b

(
  {}         Pop and yield n = a.
  (<()>)       Push d = 0.
)              Push n + 0 = n.
             STACK: n, d = 0, b
{(           While n in non-zero:
  {}           Pop and yield n.
  [()]         Yield -1.
  <
   ((
     {}         Pop and yield d.
     ()         Yield 1.
     [({})]     Pop b, push it back on the stack, and yield -b.
   ))         Push d + 1 + -b = d + 1 - b twice.
   {          While/if d + 1 - b is non-zero, i.e., if d < b - 1
     {}         Pop d + 1 - b (second copy).
     (<(
       {}         Pop d + 1 - b (first copy).
       ({})       Pop b and push it back on the stack.
     )>)        Push d + 1 - b + b = d + 1, then 0.
   }          If the loop wasn't skipped entirely, pushing 0 breaks out.
              If d < b - 1, it essentially performs the assignment d = d + 1.
              However, if d = b - 1, we get d = d + 1 - b = b - 1 + 1 - b = 0.
              In all cases, we wind up with d = (d + 1) % b.
   {}         Pop 0.
  >         Yield 0.
)}        Push n + -1 + 0 = n - 1. Break if n - 1 = 0.
          STACK: n = 0, d = a % b, b
(
  {}        Pop and yield n = 0.
  {}        Pop and d = a % b.
  <{}>      Pop b, but yield 0.
)         Push 0 + a % b + 0 = a % b.

x86_32 machine code, 8 bytes

08048550 <div7>:
 8048550:   99                      cdq   
 8048551:   f7 f9                   idiv   %ecx
 8048553:   85 d2                   test   %edx,%edx
 8048555:   0f 94 c0                sete   %al

This is my first code golf answer, so hopefully I'm following all the rules.

This first calls cdq to clear out the edx register, then performs signed division on the ecx register, which stores the remainder in edx. The test edx, edx line will set the zero flag if edx is zero, and sete puts a 0 for false if edx was not zero, and puts a 1 for true if edx was 0.

This is just the code snippet that contributes to the byte count, but for testing, here is the C code I wrote with the inline assembly because it's easier this way to handle I/O.

Brain-flak 102, 98, 96 bytes

(({}<>))<>{({}[()])<>(({}[()])){{}(<({}[({})])>)}{}({}({}))<>}{}<>([{}]{}){<>(([()])())}({}{}())

Eww. Gross. I might post an explanation, but I barely understand it myself. This language hurts my brain.

Try it online!

Thanks to github user @Wheatwizard for coming up with a modulus example. I probably could not have figured that out myself!

Also, the shorter answer is here.

Possibly incorrect explanation:

(({}<>))                    #Push this element onto the other stack
<>                          #Move back to stack one.
{                           #While the top element is non-zero:
 ({}[()])                   #  Decrement the number on top
 <>                         #  Move to the other stack
 (({}[()]))                 #  Push the top element minus one twice
 {                          #  While the top element is non-zero:
  {}                        #    Pop the top element
  (<          >)            #    Push a zero
        ({})                #    Push the second from top element
       [    ]               #    Evalue this second from top element as negative
    ({}      )              #    And push that negative plus the top element
 }
 {}                         #  Pop the top element
 ({}({}))                   #  Push the top element plus the second from the top, AND push the second from top
 <>                         #  Switch stacks
}

{}                          #Pop the stack
<>                          #Switch to the other stack
([{}]{})                    #And push the top element minus the second element.

The rest is pretty straightforward.

{              }            #While the top element is non-zero:
 <>                         #Move to the other stack
   (([()])  )               #Push a negative one
          ()                #AND push the previously pushed value + 1 (e.g. 0)

                 (      )   #Push:
                  {}{}      #The top two elements added together
                      ()    #Plus one

Hexagony, 15, 13, 12 10 bytes

Everybody's favorite hexagon-based language! :D

TL;DR works using magic, unformatted solutions in decreasing byte count:

?{?..>1'%<.@!'/
?{?!1\.'%<@.>
?{?\!1@'%\!(
?{?!1\@'%<

Saved 2 bytes thanks to @MartinEnder's layout wizardry.

@FryAmTheEggman saved 1 byte by using the corners more creatively

Both @MartinEnder and @FryAmTheEggman came up with a 10 byte solution that doesn't print anything for falsely values.

My solution (15):

Unformatted:

?{?..>1'%<.@!'/

Formatted:

  ? { ?
 . . > 1
' % < . @
 ! ' / .
  . . .

@Martin Ender's Solution (13):

Unformatted:

?{?!1\.'%<@.>

Formatted:

  ? { ?
 ! 1 \ .
' % < @ .
 > . . .
  . . .

Explanation:

First, we get the input and take the modulus.

  ? { ?
 . . . .
' % . . .
 . . . .
  . . .

Then, it checks if the modulus is 0 or not. If it is, the IP turns 60 degrees left, bounces off the mirror, sets the cell to 1 and prints.

Then, the IP continues onto the fourth row. When it reaches the >, it turns to the right instead (because the value of the cell is now 1). It goes oob, and comes back in the bottom right corner heading NW. The IP hits the <, goes along the top row, and comes back in the right corner to hit the @, stopping the program.

  . . .
 ! 1 \ .
. . < @ .
 > . . .
  . . .

If the modulus turns out to be positive, the IP turns 60 degrees to the right. Once it goes out the bottom right corner, it continues on the bottom left edge because of Hexagony's wrapping rules. The ' is reused to make the IP go to a cell with 0 in it. The IP then travels along the fourth row, wraps around to the second, hits print, and gets reflected into the <. The rest of the path to the @ is the same.

  . . .
 ! . \ .
' . < @ .
 > . . .
  . . .

That's some serious wizardry.

@FryAmTheEggman's Solution (12):

Unformatted:

?{?\!1@'%\!(

Formatted:

  ? { ?
 \ ! 1 @
' % \ ! (
 . . . .
  . . .

Explanation:

Like the other solutions, it gets the input and takes the modulus.

  ? { ?
 . . . .
' % . . .
 . . . .
  . . .

Then, the IP gets deflected into the bottom corner. If the modulus is positive, it goes on the top left edge. The ? has no more input, so it sets the cell to 0. The ! then prints the 0, and the @ terminates the program.

  ? . .
 \ ! . @
. . \ . .
 . . . .
  . . .

Things are much trickier for when the modulus is 0. First of all, it gets decremented, then reset to 0, then set to 1, then printed. Then, the 1 gets decremented to 0. After that, the program runs like it does at the beginning until it tries to do 0%0. That makes it throw a silent error and quit.

  ? { ?
 . . 1 .
' % \ ! (
 . . . .
  . . .

I really like the silent error trick, but a simpler way would be to replace the ( with / so that the IP passes through the first time, but gets reflected into @ the second.

Collaborative solution (10):

Unformatted:

?{?!1\@'%<

Formatted:

  ? { ?
 ! 1 \ @
' % < . .
 . . . .
  . . .

This program starts out the same as all the other programs, getting the input and modding it.

If the input is 0, the IP turns left when it hits <. It gets deflected into 1!@, which prints 1 and quits.

  . . .
 ! 1 \ @
. . < . .
 . . . .
  . . .

If the input is positive, the IP turns right when it hits <. It exits through the corner, and goes along the top right edge hitting the @ without printing.

  . . ?
 . . . @
. . < . .
 . . . .
  . . .

Retina, 12 bytes

^(1+)\1* \1$

Takes space-separated input in unary, like 111111111111 1111 to check if 12 if divisible by 4. Prints 1 (true) or 0 (false).

Try it online!

FryAmTheEggman saved two bytes. Oops, rewrote my answer to take the arguments in the right order. (Then Fry beat me to it in the comments. I’m slow at regex!)

brainfuck, 53 bytes

Takes input as bytes, output is a byte value of 0x00 or 0x01. It's the DivMod algorithm followed by Boolean negation.

,>,<[->-[>+>>]>[+[-<+>]>+>>]<<<<<]>,>[<+>,]+<[>-<-]>.

Try it online - Has a bunch of extra + near the end so you can see the output in ASCII.

Brain-Flak, 88 86 bytes

(<({}<>)>)<>{({}[()])<>(({}()[({})])){{}(<({}({}))>)}{}<>}<>(({}<{}>)){{}{}(<(())>)}{}

This is a denser version of the original Brain-Flak divisibility test algorithm written by Dr Green Eggs and Iron Man DJMcMayhem and myself.

Here is a brief(ish) explanation of how it works:

  ({}<>)        #Move the top of the stack to the other stack #Start Mod
(<      >)      #Push zero
<>              #Switch stacks
{               #While the top of the stack is not zero
 ({}[()])       #Subtract one from the top of the stack
 <>             #Switch stacks
   {}()         #Pop the top, add one and ...
       [({})]   #Subtract the second element on the stack
 ((          )) #Push twice
 {              #If the top is not zero
  {}            #Pop the duplicate
    ({}({}))    #Add the second element to the first
  (<        >)  #Push zero
 }              #End if
 {}             #Pop the zero
 <>             #Switch back
}               #End While
<>              #Switch to the other stack
 ({}<{}>)       #Remove the second value on the stack         #End Mod
(        )      #Duplicate the result of modulation
{               #If the top is not zero
 {}{}           #Pop the top two elements
 (<(())>)       #Push a one and a zero
}               #End if
{}              #Pop the zero

Try it Online!

Dyalog APL, 3 bytes

0=|

Is zero equal to the division remainder?

R, 22 20 bytes

a=scan();!a[1]%%a[2]

As usually, reads two numbers from the input that is terminated by an empty line.

Update: thanks to Jarko Dubbeldam for shaving off 2 bytes (despite the fact that his edit was rejected, it was very helpful!).

CJam, 6 4 bytes

Saved 2 bytes thanks to Dennis

q~%!

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q    e# Take in the input
 ~   e# Dump the individual values to the stack
  %  e# Modulus
   ! e# Boolean NOT

GolfScript, 3 bytes

~%!

Explanation:

~    # Evaluate the input
 %   # Take the first modulus the second
  !  # Boolean not

Try it online!

Brachylog, 2 bytes

%0

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Pyth, 6 4 3 bytes

%.*

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Input is passed as an array [n,d]. Output is zero for false and a positive integer for true.

Explanation follows:

 .*   Unwraps input (from [n,d] to n, d)
%     Takes n (mod d).

Julia, 9 bytes

D\d=D%d<1

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MarioLANG, 121 109 107 bytes

Saved 14 bytes thanks to Martin Ender

;>(-)-)+(([!)
)"=========#[
; +(![-)< )<!+
  ==#==="  "#:
>!< >(+ !![(<
=#"="===##=:"
  !      <
  #======"

Try it online!

Explanation

The algorithm is simply to keep subtracting d from n to see if you can do it an integer number of times and have no remainder.

;
)
;

>
=
 
 

First, the input is collected. n is in the first cell, d in the second.

 >(-)-)+(([!
 "=========#
          )<
           "
 !
 #"="===##=
  
  

This is essentially the main loop. It decrements the first and second cells, and increments the third.

           [!)
           =#[
             !+
             #:
            (<
            :"
 
 

This is the final output. If after the incrementing/decrementing, the first cell is 0, then we've eliminated n. If after this, the second cell (d) is 0, then d went into n evenly. We increment and print (1). Otherwise, move back to the first cell (which is 0) and print it.

 
 
  +(![-)<  
  ==#==="  
 !< >(+ !![
 #"="===##=
  !      <
  #======"

This loop happens if the second cell is 0 after incrementing and decrementing. It copies the third cell to the second cell. The part at the bottom is to bypass the loop if the cell is not 0.

J, 3 bytes

0=|

Usage:

2 (0=|) 10 

Will return 1. And is equivalent to pseudocode 10 MOD 2 EQ 0

Note this is very similar to the APL answer, because J is heaviliy inspired by APL

Chip, 356 bytes

*Z~v---v---v---v---v---v---v---.
e H/vZG/vZF/vZE/vZD/vZC/vZB/vZA/vZ
 f*z|)--x)--x)--x)--x)--x)--x)--x)~a
A~#Mxx--xx--xx--xx--xx--xx--xx--xx.
B~#Mxx--xx--xx--xx--xx--xx--xx. `@'
C~#Mxx--xx--xx--xx--xx--xx. `@@--'
D~#Mxx--xx--xx--xx--xx. `@@--('
E~#Mxx--xx--xx--xx. `@@--('
F~#Mxx--xx--xx. `@@--('
G~#Mxx--xx. `@@--('
H~#Mxx. `@@--('
 t~Z`@@--('
,^-{-('
`~Ss

Try it online!

The basic strategy here is to repeatedly subtract the divisor from the dividend until we hit zero, or we go negative. Since Chip only has adders, we negate the divisor and repeatedly add instead, looking for the first iteration that doesn't result in an overflow. Chip operates on eight bits at a time, so this solution only handles positive, signed, two's complement, one-byte integers; therefore input values are allowed to range from 1 to 127. Zero values are somewhat handled: 0/n and 0/0 are truthy; n/0 is falsy.

Each input value is read as a byte, which is why the TIO uses a bit of awk. The inputs saved in the TIO link are the test case 22/2==truthy.

Output is given as ASCII '0' or '1', because it required no extra bytes over code points 0x0 and 0x1.

How it works

This is rather complex (as you may have noticed), so I'll just cover the highlights.

On the first cycle, the dividend, n, is read in via the elements A through H in line 2, and stored for the next cycle in the Z elements to their right.

On the second tick, the divisor, d, is read in via A through H in the first column of lines 4 and onward. This is immediately bitwise-negated via the ~'s and incremented by one via the #'s. We can now store the inverse value, -d, in the column of M elements.

Starting on the second cycle, and every cycle thereafter, n is incremented by -d in the diagonal grouping of @ elements (each pair corresponds to a full-adder), and the new value is stored back in the Z's above.

If there is no overflow carry on the operation, the block with t, S, and s in the lower left will print out one byte and terminate execution. The a at top right will determine whether a '1' or a '0' is printed, based on whether n is currently zero or not.

The other Z and z elements are to provide initialization values for the first cycle, since we don't have d yet. The elements e and f in the top left perform the mapping to ASCII for output. Pretty much all the other elements are wires, to connect everything up.

C, 16 bytes

Believe it or not C (GCC) will return the last modified value if no return method is called.

That said,

f(a,b){a=a%b<1;}

Try it online

---

Special thanks to @Ahemone and @l4m2 for teaching me about this trick today

ArnoldC, 244 bytes

HEY CHRISTMAS TREE r
YOU SET US UP 0
GET TO THE CHOPPER r
HERE IS MY INVITATION a
I LET HIM GO b
ENOUGH TALK
BECAUSE I'M GOING TO SAY PLEASE r
TALK TO THE HAND 0
BULLSHIT
TALK TO THE HAND 1
YOU HAVE NO RESPECT FOR LOGIC
YOU HAVE BEEN TERMINATED

Try it online!

How it works

HEY CHRISTMAS TREE r               // Define Variable r
YOU SET US UP 0                    // Set r to 0 

GET TO THE CHOPPER r               // Start declaration of r 
HERE IS MY INVITATION a            // Use a for calculation
I LET HIM GO b                     // set r to a mod b
ENOUGH TALK                        // End declaration of r

BECAUSE I'M GOING TO SAY PLEASE r  // if r > 0
TALK TO THE HAND 0                 // print 0
BULLSHIT                           // else
TALK TO THE HAND 1                 // print 1
YOU HAVE NO RESPECT FOR LOGIC      // end if

YOU HAVE BEEN TERMINATED           //end main

ECMAScript Regex, 10 bytes

^(x+),\1*$

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Deciding to learn this after seeing some of Deadcode's amazing submissions. Clearly, I'm starting off with much easier problems. Takes input as d,n, with both number in unary, and matches if the n is divisible by d.

Explanation:

^           From the start of the string
 (x+)       Capture d xs in \1
     ,      Match the separator
      \1*^  In n, match d repeatedly until the end of the string

Pyke, 2 bytes

%!

Try it here!

not (a mod b)

Actually, 3 2 bytes

%Y

Saved one byte thanks to @Mego.

Try it online!

MATL, 2 bytes

\~

Try it online!

\    % Take two inputs implicitly. Compute their modulo
~    % Logical negate. Implicit display

Befunge, 6 bytes

&&%!.@

Try it here! Input two numbers, separated by a space. Output is 0 or 1 for falsy or truthy.

JavaScript (ES6), 12 Bytes

EDIT

This post was beaten here

---

d=>h=>d%h==0

Explanation:

d=>
   h=>
    d%h==0 // Is the remainder of d/h equal to 0 (i.e. is it divisible)

Jellyfish, 5 bytes

pN/|i

Input is a list containing [d n].

Try it online!

The i is replaced with the input value when the program starts. /| folds modulo over the list, taking the second list element modulo the first. N is logical negation, giving 1 for input 0 and 0 for everything else.

R, 20 bytes

Small improvement on this answer.

a=scan();!a[1]%%a[2]

If the result of the modulo operation is 0, this is interpreted as a false, which is then inverted by the !. Any other number would be a truthy, which again is inverted by the ! into a false.

Groovy, 12 chars/bytes

Adding a Groovy version just for the sake of completeness, and for a comparison with the Java 8 snippet above.

Groovy is a Java-based language compiled to JVM bytecode, and was designed with a very concise syntax in mind, allowing less boilerplate code than pure Java. But if failed this time! The actual code is one byte shorter than Java, but needs the curly braces in order to compile as an anonymous closure, making it 1 byte longer at 12 bytes:

{n,d->n%d<1}

To run with n=9, d=3, just do this:

println ({n,d->n%d<1}(9,3))

You can try it online on http://groovyconsole.appspot.com

ASMD, 3 bytes (non-competing)

%0=

Keg, 2 bytes

%;

Try it online!

Takes 2 integers, modulos them. A zero value is falsy, and a non-zero value is truthy; therefor the decrement instruction ; reverses those values.

Pyth, 3 bytes

!%F

Test suite.

05AB1E, 6 bytes

II%0Q,

Uses CP-1252 encoding. Try it online!

You can also use the built in

Ö

which does exactly what the challenge asks. Just that the 2 inputs are swapped. Try it online!

Minkolang 0.15, 6 bytes

nn%,N.

Try it here!

Explanation

nn        Take two numbers from input
  %       Pop b, a and push a%b
   ,      NOT top of stack
    N.    Output as number and stop.

Clojure, 64 bytes

(fn[n d](nil?(some #((set %) \a)(partition d d "a" (range n)))))

Not a competitive solution but does not use any arithmetic operations. Partitions range 0 .. n into lists of length d and if there is not enough elements for the last list adds "a"s to it. And then try to find a list which contains \a character.

See it online: https://ideone.com/prK5Iq

Labyrinth, 8 bytes

??
@%
!1

Input is just the two numbers, using any non-numeric separator of your choice. Output is either 1 for truthy or nothing at all for falsy.

Try it online!

Alternative solution that prints 0 for falsy but terminates with an error (same byte count):

<1%??
!;

Explanation

There's only one branch in the execution and that's after the modulo (%). When the input is a truthy case, the following is executed:

?   Read integer and push onto stack.
?   Read integer and push onto stack.
%   Take the first modulo the second integer. The result is zero, so the
    instruction pointer keeps moving south.
1   Turn that zero into a one.
!   Print it.
@   Terminate the program.

Otherwise, the following code is executed:

?   Read integer and push onto stack.
?   Read integer and push onto stack.
%   Take the first modulo the second integer. The result is positive, so
    the instruction pointer turns west.
@   Terminate the program.

Element, 7 bytes

__%?!"`

Wow, I'm even more disappointed than expected. It takes two numbers as input, performs the modulo operation, tests for truthiness, negates the result (so a modulo of 0 is converted to a "true" and other numbers are "false"), then moves this result to the main stack, and then outputs it.

dc, 8 7 bytes

Input is delimited by a space: n d

?~/z1-n

If false, it outputs 0. If true, it outputs 1 and throws an error about division by zero.

Explanation:

?   # Take input from stdin.
~   # Pop two values from stack. Push quotient. Push remainder.
/   # Attempt to divide quotient by remainder.
    #   If input is divisible, then remainder is 0.
    #     Division fails, throwing an error and leaving both numbers on stack.
    #     (Stack depth is 2.)
    #   If input is not divisible, then remainder is not 0.
    #     Division succeeds, and result is pushed on stack. (Stack depth is 1.)
z   # Push stack depth on stack. (If divisible, push 2; if indivisible, push 1.)
1-  # Subtract 1 from top of stack. ToS is now 1 or 0.
n   # Pop top of stack and print it as a number.

Sesos, 16 bytes

Hexdump:

0000000: d6659c af71e7 a0fbf8 70cedc ae8de7 1e             .e..q....p......

Try it online!

Assembler:

set numin
set numout
get,fwd 1,get,rwd 1
jmp
  fwd 1,sub 1,fwd 1,add 1,rwd 1
  jmp
    fwd 2
  jnz
  fwd 1
  jmp
    sub 1,rwd 1,add 1,fwd 1
  jnz
  rwd 3
  jmp
    rwd 1
  jnz
  fwd 1
  sub 1
jnz
fwd 4,add 1,rwd 2
jmp
  fwd 1
jnz
fwd 2
put

Brainfuck: ,>,<[>->+<[>>]>[-<+>]<<<[<]>-]>>>>+<<[>]>>.

ROOP, 24 bytes

I
w
 w
R #H
 #
N
 #
W
O#

The I is the input object. When the object is on the operator w wait the entry of a number that puts it under. Then the I moves to the right and falls on the second w waiting for the second number. The operator R removes those two numbers, and make the remainder of divide them below. The N operator removes that number and creates a 1 if the number was 0, and 0 otherwise. Then the W operator puts that number in the O object representing the output. At the same time the I reached the operator H that ends execution.

Emotinomicon, 16

Explanation:

 
        pushes integer input
        pushes integer input
        pops n,m; pushes n mod m
        pops n; outputs as number

Returns zero for truthy if first integer is divisible by second, returns non-zero for falsy.

Vitsy, 1 Byte

This is a function that leaves 0 on the stack if true and a non-zero integer on the stack if false.

M

(This is the modulo function.)

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(N has been added for output).

05AB1E, 2 1 byte

Ö

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Was sÖ (Test here) but arguments switched (suggested by @Mego). This allowed me to golf down to 1 byte.

Explanation (old):

s    Reverses input e.g. 6, 3 -> 3,6 so that input is in correct order
 Ö   Checks if (top of stack % second top of stack) == 0 e.g. 6 % 3 == 0
     Implicitly prints (1 because 6 % 3 = 0)

Elixir, 14 bytes

&rem(&1,&2)==0

Anonymous function defined using the capture operator.

Full program with test cases (yes, the . in the function call is mandatory!):

s=&rem(&1,&2)==0
# test cases
IO.puts s.(1,1) # true
IO.puts s.(2,1) # true
IO.puts s.(6,3) # true
IO.puts s.(17,17)   # true
IO.puts s.(22,2)    # true
IO.puts s.(1,2) # false
IO.puts s.(2,3) # false
IO.puts s.(2,4) # false
IO.puts s.(3,9) # false
IO.puts s.(15,16)   # false

Try it online on ElixirPlayground !

Functoid, 21 bytes

Y(yg(KZ)(BBC+C-))$$;@

Full program expecting two arguments d and n, try it online!

Explanation

Y(              )      # fix point of the following function
  y                    # define recursive function with 2 arguments
   g                   #   - base case: x > y
    (KZ)               #   - in base case: check y == 0
        (BBC+C-)       #   - else: call f recursively with x and (y-x)
                 $$    # apply two command-line arguments
                   ;   # print as a boolean 
                    @  # terminate program

T-SQL, 27 bytes

Per our input standards, input is provided via pre-existing table t, with integer fields n and d:

SELECT IIF(n%d=0,1,0)FROM t

'%' is the remainder/modulo operator in SQL.

Note that the original list of test values could be improved: the 5 failing cases all fail trivially because n < d. Some better test values (5 succeeding, 5 failing):

(200,50),(91,7),(999,3),(45,5),(10000,2),(45,10),(99,2),(100,98),(100,24),(100,51)

Japt, 2 bytes

vV

Returns 1 for true, 0 for false.

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Test cases

QBIC (Non-competing), 8 bytes

::?a%b=0

For this challenge, I've improved QBIC's user input of numeric values. : now takes a command line argument and casts this to num.

3d, 15 bytes

>::%v
;!T'_'F!;

Takes 2 numbers a and b as input, proceed a mod b, prints T if result is 0, F else. Simple and efficient.
Can be golfable, but since I'm still working on the aforelinked interpreter, I might not come back on it for improvement.
I'm just making a little advertising for my esolang ;)

><>, 3 bytes

%n;

Input numbers are assumed to be on the stack. ><> does not have any default truthy or falsy values, so I use 0 as truthy and everything else as falsy. That seems to be allowed. (If not, 1-truthy, 0-falsy, can be done like this in 5 bytes: %0=n;).

Magma, 13 bytes

IsDivisibleBy

Pretty readable, I think. Try it at the online calculator, e.g.

IsDivisibleBy(100, 50);
IsDivisibleBy(100, 54);

gives

true
false

RProgN, 3 Bytes

% !

Explination

%   # Take the Modulus of the value under the top of the stack compared to the top of the stack. (The Inputs in order, conveniently enough)
!   # Push the Boolean not of it. In this case, 0 is falsey, and all numbers !=0 are truthy, so false correctly inverts it.

Yay, RProgN is a competitive language!

tinylisp (REPL), 38 bytes

(d |(q((N D)(i(l N D)(e N 0)(|(s N D)D

Defines a function | that takes N and D and returns 1 if divisible, 0 otherwise. The REPL infers closing parentheses as necessary at the end of the code. Call the function like (| 22 2).

Ungolfed/explanation:

(d |                  Define | to be...
 (q (                 a function, i.e. a list containing...
  (N D)               list of params N and D, and function body:
  (i (l N D)           If N is less than D, then return:
   (e N 0)              1 if N equals 0, 0 otherwise;
   (| (s N D) D)))))    Else, recurse with arguments N - D and D

Gets kinda slow for N around D * 10^5 and larger.

TCC, 1 byte (Non-competing)

v

Input is 2 numbers seperated by a space

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