Task: Factorise $6y^3 -y^2 -21y + 2x^2 + 12x -4xy +x^2y -5xy^2 + 10 $ into 3 linear factors

Workings: let $$ f(x,y) = 6y^3 -y^2 -21y + 2x^2 + 12x -4xy +x^2y -5xy^2 + 10 $$
$$ f(x,-2) = 0 \Rightarrow f(x,y)= (y+2)(ay+cx+d)(by+ex+f) $$

At this stage, I noted the possible combinations a and b could take in the equation $ab = 6$. $ a = 3, b = 2 ; a = -3, b=-2$. I had two values a and b could take and didn't know which one to take, so I just took $a = 3$ and $b=2$. After going through a few simultaneous equations, I ended up with $$f(x,y) = (y+2)(3y-x-5)(2y-x-1)$$

The mark scheme ended up with $$f(x,y) = (y+2)(-2y+x+1)(-3y+x+5)$$ since they took $a=-3$ and $b=-2$.

Question: Have I gotten this question wrong? If so, explain why please