Convert PHP Curl To Python

I've been trying to translate some PHP code to Python 3 but can't quite get it to work. In PHP I have the following:

$request = "https://api.example.com/token";
$developerKey = "Basic VVVfdFdfsjkUIHDfdsjYTpMX3JQSDNJKSFQUkxCM0p0WWFpRklh";
$data = array('grant_type'=>'password',
                'username'=>'name',
                'password'=>'pass',
                'scope'=>'2346323');
$cjconn = curl_init($request);
curl_setopt($cjconn, CURLOPT_POST, TRUE);
curl_setopt($cjconn, CURLOPT_HTTPHEADER, array('Authorization: '.$developerKey));
curl_setopt($cjconn, CURLOPT_SSL_VERIFYPEER, FALSE);
curl_setopt($cjconn, CURLOPT_RETURNTRANSFER, TRUE);
curl_setopt($cjconn, CURLOPT_POSTFIELDS,http_build_query($data));
$result = curl_exec($cjconn);
curl_close($cjconn);
$tokens = json_decode($result,true);
$accesstoken = $tokens['access_token'];
echo $accesstoken."\n";

I tried converting it to the following in Python:

import pycurl, json

url = 'https://api.example.com/token'
data = json.dumps({"grant_type":"password",
                        "username":"name",
                        "password":"pass",
                        "scope":"2346323"})
key = 'Basic VVVfdFdfsjkUIHDfdsjYTpMX3JQSDNJKSFQUkxCM0p0WWFpRklh'
c = pycurl.Curl()
c.setopt(pycurl.URL,url)
c.setopt(pycurl.HTTPHEADER,['Authorization: {}'.format(key)])
c.setopt(pycurl.POST,1)
c.setopt(pycurl.POSTFIELDS,data)
c.perform()

But I get the following error:

<faultstring>String index out of range: -1</faultstring>

How can I correct this, or is there a more pythonic solution?